Make psymbols and psymtabs independent of the program space
[deliverable/binutils-gdb.git] / gdb / xcoffread.c
1 /* Read AIX xcoff symbol tables and convert to internal format, for GDB.
2 Copyright (C) 1986-2018 Free Software Foundation, Inc.
3 Derived from coffread.c, dbxread.c, and a lot of hacking.
4 Contributed by IBM Corporation.
5
6 This file is part of GDB.
7
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 3 of the License, or
11 (at your option) any later version.
12
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with this program. If not, see <http://www.gnu.org/licenses/>. */
20
21 #include "defs.h"
22 #include "bfd.h"
23
24 #include <sys/types.h>
25 #include <fcntl.h>
26 #include <ctype.h>
27 #ifdef HAVE_SYS_FILE_H
28 #include <sys/file.h>
29 #endif
30 #include <sys/stat.h>
31
32 #include "coff/internal.h"
33 #include "libcoff.h" /* FIXME, internal data from BFD */
34 #include "coff/xcoff.h"
35 #include "libxcoff.h"
36 #include "coff/rs6000.h"
37 #include "xcoffread.h"
38
39 #include "symtab.h"
40 #include "gdbtypes.h"
41 /* FIXME: ezannoni/2004-02-13 Verify if the include below is really needed. */
42 #include "symfile.h"
43 #include "objfiles.h"
44 #include "buildsym-legacy.h"
45 #include "stabsread.h"
46 #include "expression.h"
47 #include "complaints.h"
48 #include "psympriv.h"
49
50 #include "gdb-stabs.h"
51
52 /* For interface with stabsread.c. */
53 #include "aout/stab_gnu.h"
54
55 \f
56 /* Key for XCOFF-associated data. */
57
58 static const struct objfile_data *xcoff_objfile_data_key;
59
60 /* We put a pointer to this structure in the read_symtab_private field
61 of the psymtab. */
62
63 struct symloc
64 {
65
66 /* First symbol number for this file. */
67
68 int first_symnum;
69
70 /* Number of symbols in the section of the symbol table devoted to
71 this file's symbols (actually, the section bracketed may contain
72 more than just this file's symbols). If numsyms is 0, the only
73 reason for this thing's existence is the dependency list. Nothing
74 else will happen when it is read in. */
75
76 int numsyms;
77
78 /* Position of the start of the line number information for this
79 psymtab. */
80 unsigned int lineno_off;
81 };
82
83 /* Remember what we deduced to be the source language of this psymtab. */
84
85 static enum language psymtab_language = language_unknown;
86 \f
87
88 /* Simplified internal version of coff symbol table information. */
89
90 struct coff_symbol
91 {
92 char *c_name;
93 int c_symnum; /* Symbol number of this entry. */
94 int c_naux; /* 0 if syment only, 1 if syment + auxent. */
95 CORE_ADDR c_value;
96 unsigned char c_sclass;
97 int c_secnum;
98 unsigned int c_type;
99 };
100
101 /* Last function's saved coff symbol `cs'. */
102
103 static struct coff_symbol fcn_cs_saved;
104
105 static bfd *symfile_bfd;
106
107 /* Core address of start and end of text of current source file.
108 This is calculated from the first function seen after a C_FILE
109 symbol. */
110
111
112 static CORE_ADDR cur_src_end_addr;
113
114 /* Core address of the end of the first object file. */
115
116 static CORE_ADDR first_object_file_end;
117
118 /* Initial symbol-table-debug-string vector length. */
119
120 #define INITIAL_STABVECTOR_LENGTH 40
121
122 /* Size of a COFF symbol. I think it is always 18, so I'm not sure
123 there is any reason not to just use a #define, but might as well
124 ask BFD for the size and store it here, I guess. */
125
126 static unsigned local_symesz;
127
128 struct coff_symfile_info
129 {
130 file_ptr min_lineno_offset; /* Where in file lowest line#s are. */
131 file_ptr max_lineno_offset; /* 1+last byte of line#s in file. */
132
133 /* Pointer to the string table. */
134 char *strtbl;
135
136 /* Pointer to debug section. */
137 char *debugsec;
138
139 /* Pointer to the a.out symbol table. */
140 char *symtbl;
141
142 /* Number of symbols in symtbl. */
143 int symtbl_num_syms;
144
145 /* Offset in data section to TOC anchor. */
146 CORE_ADDR toc_offset;
147 };
148
149 /* Convenience macro to access the per-objfile XCOFF data. */
150
151 #define XCOFF_DATA(objfile) \
152 ((struct coff_symfile_info *) objfile_data ((objfile), \
153 xcoff_objfile_data_key))
154
155 /* XCOFF names for dwarf sections. There is no compressed sections. */
156
157 static const struct dwarf2_debug_sections dwarf2_xcoff_names = {
158 { ".dwinfo", NULL },
159 { ".dwabrev", NULL },
160 { ".dwline", NULL },
161 { ".dwloc", NULL },
162 { NULL, NULL }, /* debug_loclists */
163 /* AIX XCOFF defines one, named DWARF section for macro debug information.
164 XLC does not generate debug_macinfo for DWARF4 and below.
165 The section is assigned to debug_macro for DWARF5 and above. */
166 { NULL, NULL },
167 { ".dwmac", NULL },
168 { ".dwstr", NULL },
169 { NULL, NULL }, /* debug_line_str */
170 { ".dwrnges", NULL },
171 { NULL, NULL }, /* debug_rnglists */
172 { ".dwpbtyp", NULL },
173 { NULL, NULL }, /* debug_addr */
174 { ".dwframe", NULL },
175 { NULL, NULL }, /* eh_frame */
176 { NULL, NULL }, /* gdb_index */
177 { NULL, NULL }, /* debug_names */
178 { NULL, NULL }, /* debug_aranges */
179 23
180 };
181
182 static void
183 bf_notfound_complaint (void)
184 {
185 complaint (_("line numbers off, `.bf' symbol not found"));
186 }
187
188 static void
189 ef_complaint (int arg1)
190 {
191 complaint (_("Mismatched .ef symbol ignored starting at symnum %d"), arg1);
192 }
193
194 static void
195 eb_complaint (int arg1)
196 {
197 complaint (_("Mismatched .eb symbol ignored starting at symnum %d"), arg1);
198 }
199
200 static void xcoff_initial_scan (struct objfile *, symfile_add_flags);
201
202 static void scan_xcoff_symtab (minimal_symbol_reader &,
203 struct objfile *);
204
205 static const char *xcoff_next_symbol_text (struct objfile *);
206
207 static void record_include_begin (struct coff_symbol *);
208
209 static void
210 enter_line_range (struct subfile *, unsigned, unsigned,
211 CORE_ADDR, CORE_ADDR, unsigned *);
212
213 static void init_stringtab (bfd *, file_ptr, struct objfile *);
214
215 static void xcoff_symfile_init (struct objfile *);
216
217 static void xcoff_new_init (struct objfile *);
218
219 static void xcoff_symfile_finish (struct objfile *);
220
221 static char *coff_getfilename (union internal_auxent *, struct objfile *);
222
223 static void read_symbol (struct internal_syment *, int);
224
225 static int read_symbol_lineno (int);
226
227 static CORE_ADDR read_symbol_nvalue (int);
228
229 static struct symbol *process_xcoff_symbol (struct coff_symbol *,
230 struct objfile *);
231
232 static void read_xcoff_symtab (struct objfile *, struct partial_symtab *);
233
234 #if 0
235 static void add_stab_to_list (char *, struct pending_stabs **);
236 #endif
237
238 static int compare_lte (const void *, const void *);
239
240 static struct linetable *arrange_linetable (struct linetable *);
241
242 static void record_include_end (struct coff_symbol *);
243
244 static void process_linenos (CORE_ADDR, CORE_ADDR);
245 \f
246
247 /* Translate from a COFF section number (target_index) to a SECT_OFF_*
248 code. */
249 static int secnum_to_section (int, struct objfile *);
250 static asection *secnum_to_bfd_section (int, struct objfile *);
251
252 struct find_targ_sec_arg
253 {
254 int targ_index;
255 int *resultp;
256 asection **bfd_sect;
257 struct objfile *objfile;
258 };
259
260 static void find_targ_sec (bfd *, asection *, void *);
261
262 static void
263 find_targ_sec (bfd *abfd, asection *sect, void *obj)
264 {
265 struct find_targ_sec_arg *args = (struct find_targ_sec_arg *) obj;
266 struct objfile *objfile = args->objfile;
267
268 if (sect->target_index == args->targ_index)
269 {
270 /* This is the section. Figure out what SECT_OFF_* code it is. */
271 if (bfd_get_section_flags (abfd, sect) & SEC_CODE)
272 *args->resultp = SECT_OFF_TEXT (objfile);
273 else if (bfd_get_section_flags (abfd, sect) & SEC_LOAD)
274 *args->resultp = SECT_OFF_DATA (objfile);
275 else
276 *args->resultp = gdb_bfd_section_index (abfd, sect);
277 *args->bfd_sect = sect;
278 }
279 }
280
281 /* Search all BFD sections for the section whose target_index is
282 equal to N_SCNUM. Set *BFD_SECT to that section. The section's
283 associated index in the objfile's section_offset table is also
284 stored in *SECNUM.
285
286 If no match is found, *BFD_SECT is set to NULL, and *SECNUM
287 is set to the text section's number. */
288
289 static void
290 xcoff_secnum_to_sections (int n_scnum, struct objfile *objfile,
291 asection **bfd_sect, int *secnum)
292 {
293 struct find_targ_sec_arg args;
294
295 args.targ_index = n_scnum;
296 args.resultp = secnum;
297 args.bfd_sect = bfd_sect;
298 args.objfile = objfile;
299
300 *bfd_sect = NULL;
301 *secnum = SECT_OFF_TEXT (objfile);
302
303 bfd_map_over_sections (objfile->obfd, find_targ_sec, &args);
304 }
305
306 /* Return the section number (SECT_OFF_*) that N_SCNUM points to. */
307
308 static int
309 secnum_to_section (int n_scnum, struct objfile *objfile)
310 {
311 int secnum;
312 asection *ignored;
313
314 xcoff_secnum_to_sections (n_scnum, objfile, &ignored, &secnum);
315 return secnum;
316 }
317
318 /* Return the BFD section that N_SCNUM points to. */
319
320 static asection *
321 secnum_to_bfd_section (int n_scnum, struct objfile *objfile)
322 {
323 int ignored;
324 asection *bfd_sect;
325
326 xcoff_secnum_to_sections (n_scnum, objfile, &bfd_sect, &ignored);
327 return bfd_sect;
328 }
329 \f
330 /* add a given stab string into given stab vector. */
331
332 #if 0
333
334 static void
335 add_stab_to_list (char *stabname, struct pending_stabs **stabvector)
336 {
337 if (*stabvector == NULL)
338 {
339 *stabvector = (struct pending_stabs *)
340 xmalloc (sizeof (struct pending_stabs) +
341 INITIAL_STABVECTOR_LENGTH * sizeof (char *));
342 (*stabvector)->count = 0;
343 (*stabvector)->length = INITIAL_STABVECTOR_LENGTH;
344 }
345 else if ((*stabvector)->count >= (*stabvector)->length)
346 {
347 (*stabvector)->length += INITIAL_STABVECTOR_LENGTH;
348 *stabvector = (struct pending_stabs *)
349 xrealloc ((char *) *stabvector, sizeof (struct pending_stabs) +
350 (*stabvector)->length * sizeof (char *));
351 }
352 (*stabvector)->stab[(*stabvector)->count++] = stabname;
353 }
354
355 #endif
356 \f/* *INDENT-OFF* */
357 /* Linenos are processed on a file-by-file basis.
358
359 Two reasons:
360
361 1) xlc (IBM's native c compiler) postpones static function code
362 emission to the end of a compilation unit. This way it can
363 determine if those functions (statics) are needed or not, and
364 can do some garbage collection (I think). This makes line
365 numbers and corresponding addresses unordered, and we end up
366 with a line table like:
367
368
369 lineno addr
370 foo() 10 0x100
371 20 0x200
372 30 0x300
373
374 foo3() 70 0x400
375 80 0x500
376 90 0x600
377
378 static foo2()
379 40 0x700
380 50 0x800
381 60 0x900
382
383 and that breaks gdb's binary search on line numbers, if the
384 above table is not sorted on line numbers. And that sort
385 should be on function based, since gcc can emit line numbers
386 like:
387
388 10 0x100 - for the init/test part of a for stmt.
389 20 0x200
390 30 0x300
391 10 0x400 - for the increment part of a for stmt.
392
393 arrange_linetable() will do this sorting.
394
395 2) aix symbol table might look like:
396
397 c_file // beginning of a new file
398 .bi // beginning of include file
399 .ei // end of include file
400 .bi
401 .ei
402
403 basically, .bi/.ei pairs do not necessarily encapsulate
404 their scope. They need to be recorded, and processed later
405 on when we come the end of the compilation unit.
406 Include table (inclTable) and process_linenos() handle
407 that. */
408 /* *INDENT-ON* */
409
410
411
412 /* compare line table entry addresses. */
413
414 static int
415 compare_lte (const void *lte1p, const void *lte2p)
416 {
417 struct linetable_entry *lte1 = (struct linetable_entry *) lte1p;
418 struct linetable_entry *lte2 = (struct linetable_entry *) lte2p;
419
420 return lte1->pc - lte2->pc;
421 }
422
423 /* Given a line table with function entries are marked, arrange its
424 functions in ascending order and strip off function entry markers
425 and return it in a newly created table. If the old one is good
426 enough, return the old one. */
427 /* FIXME: I think all this stuff can be replaced by just passing
428 sort_linevec = 1 to end_symtab. */
429
430 static struct linetable *
431 arrange_linetable (struct linetable *oldLineTb)
432 {
433 int ii, jj, newline, /* new line count */
434 function_count; /* # of functions */
435
436 struct linetable_entry *fentry; /* function entry vector */
437 int fentry_size; /* # of function entries */
438 struct linetable *newLineTb; /* new line table */
439 int extra_lines = 0;
440
441 #define NUM_OF_FUNCTIONS 20
442
443 fentry_size = NUM_OF_FUNCTIONS;
444 fentry = XNEWVEC (struct linetable_entry, fentry_size);
445
446 for (function_count = 0, ii = 0; ii < oldLineTb->nitems; ++ii)
447 {
448 if (oldLineTb->item[ii].line == 0)
449 { /* Function entry found. */
450 if (function_count >= fentry_size)
451 { /* Make sure you have room. */
452 fentry_size *= 2;
453 fentry = (struct linetable_entry *)
454 xrealloc (fentry,
455 fentry_size * sizeof (struct linetable_entry));
456 }
457 fentry[function_count].line = ii;
458 fentry[function_count].pc = oldLineTb->item[ii].pc;
459 ++function_count;
460
461 /* If the function was compiled with XLC, we may have to add an
462 extra line entry later. Reserve space for that. */
463 if (ii + 1 < oldLineTb->nitems
464 && oldLineTb->item[ii].pc != oldLineTb->item[ii + 1].pc)
465 extra_lines++;
466 }
467 }
468
469 if (function_count == 0)
470 {
471 xfree (fentry);
472 return oldLineTb;
473 }
474 else if (function_count > 1)
475 qsort (fentry, function_count,
476 sizeof (struct linetable_entry), compare_lte);
477
478 /* Allocate a new line table. */
479 newLineTb = (struct linetable *)
480 xmalloc
481 (sizeof (struct linetable) +
482 (oldLineTb->nitems - function_count + extra_lines) * sizeof (struct linetable_entry));
483
484 /* If line table does not start with a function beginning, copy up until
485 a function begin. */
486
487 newline = 0;
488 if (oldLineTb->item[0].line != 0)
489 for (newline = 0;
490 newline < oldLineTb->nitems && oldLineTb->item[newline].line; ++newline)
491 newLineTb->item[newline] = oldLineTb->item[newline];
492
493 /* Now copy function lines one by one. */
494
495 for (ii = 0; ii < function_count; ++ii)
496 {
497 /* If the function was compiled with XLC, we may have to add an
498 extra line to cover the function prologue. */
499 jj = fentry[ii].line;
500 if (jj + 1 < oldLineTb->nitems
501 && oldLineTb->item[jj].pc != oldLineTb->item[jj + 1].pc)
502 {
503 newLineTb->item[newline] = oldLineTb->item[jj];
504 newLineTb->item[newline].line = oldLineTb->item[jj + 1].line;
505 newline++;
506 }
507
508 for (jj = fentry[ii].line + 1;
509 jj < oldLineTb->nitems && oldLineTb->item[jj].line != 0;
510 ++jj, ++newline)
511 newLineTb->item[newline] = oldLineTb->item[jj];
512 }
513 xfree (fentry);
514 /* The number of items in the line table must include these
515 extra lines which were added in case of XLC compiled functions. */
516 newLineTb->nitems = oldLineTb->nitems - function_count + extra_lines;
517 return newLineTb;
518 }
519
520 /* include file support: C_BINCL/C_EINCL pairs will be kept in the
521 following `IncludeChain'. At the end of each symtab (end_symtab),
522 we will determine if we should create additional symtab's to
523 represent if (the include files. */
524
525
526 typedef struct _inclTable
527 {
528 char *name; /* include filename */
529
530 /* Offsets to the line table. end points to the last entry which is
531 part of this include file. */
532 int begin, end;
533
534 struct subfile *subfile;
535 unsigned funStartLine; /* Start line # of its function. */
536 }
537 InclTable;
538
539 #define INITIAL_INCLUDE_TABLE_LENGTH 20
540 static InclTable *inclTable; /* global include table */
541 static int inclIndx; /* last entry to table */
542 static int inclLength; /* table length */
543 static int inclDepth; /* nested include depth */
544
545 static void allocate_include_entry (void);
546
547 static void
548 record_include_begin (struct coff_symbol *cs)
549 {
550 if (inclDepth)
551 {
552 /* In xcoff, we assume include files cannot be nested (not in .c files
553 of course, but in corresponding .s files.). */
554
555 /* This can happen with old versions of GCC.
556 GCC 2.3.3-930426 does not exhibit this on a test case which
557 a user said produced the message for him. */
558 complaint (_("Nested C_BINCL symbols"));
559 }
560 ++inclDepth;
561
562 allocate_include_entry ();
563
564 inclTable[inclIndx].name = cs->c_name;
565 inclTable[inclIndx].begin = cs->c_value;
566 }
567
568 static void
569 record_include_end (struct coff_symbol *cs)
570 {
571 InclTable *pTbl;
572
573 if (inclDepth == 0)
574 {
575 complaint (_("Mismatched C_BINCL/C_EINCL pair"));
576 }
577
578 allocate_include_entry ();
579
580 pTbl = &inclTable[inclIndx];
581 pTbl->end = cs->c_value;
582
583 --inclDepth;
584 ++inclIndx;
585 }
586
587 static void
588 allocate_include_entry (void)
589 {
590 if (inclTable == NULL)
591 {
592 inclTable = XCNEWVEC (InclTable, INITIAL_INCLUDE_TABLE_LENGTH);
593 inclLength = INITIAL_INCLUDE_TABLE_LENGTH;
594 inclIndx = 0;
595 }
596 else if (inclIndx >= inclLength)
597 {
598 inclLength += INITIAL_INCLUDE_TABLE_LENGTH;
599 inclTable = XRESIZEVEC (InclTable, inclTable, inclLength);
600 memset (inclTable + inclLength - INITIAL_INCLUDE_TABLE_LENGTH,
601 '\0', sizeof (InclTable) * INITIAL_INCLUDE_TABLE_LENGTH);
602 }
603 }
604
605 /* Global variable to pass the psymtab down to all the routines involved
606 in psymtab to symtab processing. */
607 static struct partial_symtab *this_symtab_psymtab;
608
609 /* Objfile related to this_symtab_psymtab; set at the same time. */
610 static struct objfile *this_symtab_objfile;
611
612 /* given the start and end addresses of a compilation unit (or a csect,
613 at times) process its lines and create appropriate line vectors. */
614
615 static void
616 process_linenos (CORE_ADDR start, CORE_ADDR end)
617 {
618 int offset, ii;
619 file_ptr max_offset
620 = XCOFF_DATA (this_symtab_objfile)->max_lineno_offset;
621
622 /* subfile structure for the main compilation unit. */
623 struct subfile main_subfile;
624
625 /* In the main source file, any time we see a function entry, we
626 reset this variable to function's absolute starting line number.
627 All the following line numbers in the function are relative to
628 this, and we record absolute line numbers in record_line(). */
629
630 unsigned int main_source_baseline = 0;
631
632 unsigned *firstLine;
633
634 offset =
635 ((struct symloc *) this_symtab_psymtab->read_symtab_private)->lineno_off;
636 if (offset == 0)
637 goto return_after_cleanup;
638
639 memset (&main_subfile, '\0', sizeof (main_subfile));
640
641 if (inclIndx == 0)
642 /* All source lines were in the main source file. None in include
643 files. */
644
645 enter_line_range (&main_subfile, offset, 0, start, end,
646 &main_source_baseline);
647
648 else
649 {
650 /* There was source with line numbers in include files. */
651
652 int linesz =
653 coff_data (this_symtab_objfile->obfd)->local_linesz;
654 main_source_baseline = 0;
655
656 for (ii = 0; ii < inclIndx; ++ii)
657 {
658 struct subfile *tmpSubfile;
659
660 /* If there is main file source before include file, enter it. */
661 if (offset < inclTable[ii].begin)
662 {
663 enter_line_range
664 (&main_subfile, offset, inclTable[ii].begin - linesz,
665 start, 0, &main_source_baseline);
666 }
667
668 if (strcmp (inclTable[ii].name, get_last_source_file ()) == 0)
669 {
670 /* The entry in the include table refers to the main source
671 file. Add the lines to the main subfile. */
672
673 main_source_baseline = inclTable[ii].funStartLine;
674 enter_line_range
675 (&main_subfile, inclTable[ii].begin, inclTable[ii].end,
676 start, 0, &main_source_baseline);
677 inclTable[ii].subfile = &main_subfile;
678 }
679 else
680 {
681 /* Have a new subfile for the include file. */
682
683 tmpSubfile = inclTable[ii].subfile = XNEW (struct subfile);
684
685 memset (tmpSubfile, '\0', sizeof (struct subfile));
686 firstLine = &(inclTable[ii].funStartLine);
687
688 /* Enter include file's lines now. */
689 enter_line_range (tmpSubfile, inclTable[ii].begin,
690 inclTable[ii].end, start, 0, firstLine);
691 }
692
693 if (offset <= inclTable[ii].end)
694 offset = inclTable[ii].end + linesz;
695 }
696
697 /* All the include files' line have been processed at this point. Now,
698 enter remaining lines of the main file, if any left. */
699 if (offset < max_offset + 1 - linesz)
700 {
701 enter_line_range (&main_subfile, offset, 0, start, end,
702 &main_source_baseline);
703 }
704 }
705
706 /* Process main file's line numbers. */
707 if (main_subfile.line_vector)
708 {
709 struct linetable *lineTb, *lv;
710
711 lv = main_subfile.line_vector;
712
713 /* Line numbers are not necessarily ordered. xlc compilation will
714 put static function to the end. */
715
716 struct subfile *current_subfile = get_current_subfile ();
717 lineTb = arrange_linetable (lv);
718 if (lv == lineTb)
719 {
720 current_subfile->line_vector = (struct linetable *)
721 xrealloc (lv, (sizeof (struct linetable)
722 + lv->nitems * sizeof (struct linetable_entry)));
723 }
724 else
725 {
726 xfree (lv);
727 current_subfile->line_vector = lineTb;
728 }
729
730 current_subfile->line_vector_length =
731 current_subfile->line_vector->nitems;
732 }
733
734 /* Now, process included files' line numbers. */
735
736 for (ii = 0; ii < inclIndx; ++ii)
737 {
738 if (inclTable[ii].subfile != ((struct subfile *) &main_subfile)
739 && (inclTable[ii].subfile)->line_vector) /* Useless if!!!
740 FIXMEmgo */
741 {
742 struct linetable *lineTb, *lv;
743
744 lv = (inclTable[ii].subfile)->line_vector;
745
746 /* Line numbers are not necessarily ordered. xlc compilation will
747 put static function to the end. */
748
749 lineTb = arrange_linetable (lv);
750
751 push_subfile ();
752
753 /* For the same include file, we might want to have more than one
754 subfile. This happens if we have something like:
755
756 ......
757 #include "foo.h"
758 ......
759 #include "foo.h"
760 ......
761
762 while foo.h including code in it. (stupid but possible)
763 Since start_subfile() looks at the name and uses an
764 existing one if finds, we need to provide a fake name and
765 fool it. */
766
767 #if 0
768 start_subfile (inclTable[ii].name);
769 #else
770 {
771 /* Pick a fake name that will produce the same results as this
772 one when passed to deduce_language_from_filename. Kludge on
773 top of kludge. */
774 const char *fakename = strrchr (inclTable[ii].name, '.');
775
776 if (fakename == NULL)
777 fakename = " ?";
778 start_subfile (fakename);
779 xfree (get_current_subfile ()->name);
780 }
781 struct subfile *current_subfile = get_current_subfile ();
782 current_subfile->name = xstrdup (inclTable[ii].name);
783 #endif
784
785 if (lv == lineTb)
786 {
787 current_subfile->line_vector =
788 (struct linetable *) xrealloc
789 (lv, (sizeof (struct linetable)
790 + lv->nitems * sizeof (struct linetable_entry)));
791
792 }
793 else
794 {
795 xfree (lv);
796 current_subfile->line_vector = lineTb;
797 }
798
799 current_subfile->line_vector_length =
800 current_subfile->line_vector->nitems;
801 start_subfile (pop_subfile ());
802 }
803 }
804
805 return_after_cleanup:
806
807 /* We don't want to keep alloc/free'ing the global include file table. */
808 inclIndx = 0;
809 }
810
811 static void
812 aix_process_linenos (struct objfile *objfile)
813 {
814 /* There is no linenos to read if there are only dwarf info. */
815 if (this_symtab_psymtab == NULL)
816 return;
817
818 /* Process line numbers and enter them into line vector. */
819 process_linenos (get_last_source_start_addr (), cur_src_end_addr);
820 }
821
822
823 /* Enter a given range of lines into the line vector.
824 can be called in the following two ways:
825 enter_line_range (subfile, beginoffset, endoffset,
826 startaddr, 0, firstLine) or
827 enter_line_range (subfile, beginoffset, 0,
828 startaddr, endaddr, firstLine)
829
830 endoffset points to the last line table entry that we should pay
831 attention to. */
832
833 static void
834 enter_line_range (struct subfile *subfile, unsigned beginoffset,
835 unsigned endoffset, /* offsets to line table */
836 CORE_ADDR startaddr, /* offsets to line table */
837 CORE_ADDR endaddr, unsigned *firstLine)
838 {
839 struct objfile *objfile = this_symtab_objfile;
840 struct gdbarch *gdbarch = get_objfile_arch (objfile);
841 unsigned int curoffset;
842 CORE_ADDR addr;
843 void *ext_lnno;
844 struct internal_lineno int_lnno;
845 unsigned int limit_offset;
846 bfd *abfd;
847 int linesz;
848
849 if (endoffset == 0 && startaddr == 0 && endaddr == 0)
850 return;
851 curoffset = beginoffset;
852 limit_offset = XCOFF_DATA (objfile)->max_lineno_offset;
853
854 if (endoffset != 0)
855 {
856 if (endoffset >= limit_offset)
857 {
858 complaint (_("Bad line table offset in C_EINCL directive"));
859 return;
860 }
861 limit_offset = endoffset;
862 }
863 else
864 limit_offset -= 1;
865
866 abfd = objfile->obfd;
867 linesz = coff_data (abfd)->local_linesz;
868 ext_lnno = alloca (linesz);
869
870 while (curoffset <= limit_offset)
871 {
872 bfd_seek (abfd, curoffset, SEEK_SET);
873 bfd_bread (ext_lnno, linesz, abfd);
874 bfd_coff_swap_lineno_in (abfd, ext_lnno, &int_lnno);
875
876 /* Find the address this line represents. */
877 addr = (int_lnno.l_lnno
878 ? int_lnno.l_addr.l_paddr
879 : read_symbol_nvalue (int_lnno.l_addr.l_symndx));
880 addr += ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
881
882 if (addr < startaddr || (endaddr && addr >= endaddr))
883 return;
884
885 if (int_lnno.l_lnno == 0)
886 {
887 *firstLine = read_symbol_lineno (int_lnno.l_addr.l_symndx);
888 record_line (subfile, 0, gdbarch_addr_bits_remove (gdbarch, addr));
889 --(*firstLine);
890 }
891 else
892 record_line (subfile, *firstLine + int_lnno.l_lnno,
893 gdbarch_addr_bits_remove (gdbarch, addr));
894 curoffset += linesz;
895 }
896 }
897
898
899 /* Save the vital information for use when closing off the current file.
900 NAME is the file name the symbols came from, START_ADDR is the first
901 text address for the file, and SIZE is the number of bytes of text. */
902
903 #define complete_symtab(name, start_addr) { \
904 set_last_source_file (name); \
905 set_last_source_start_addr (start_addr); \
906 }
907
908
909 /* Refill the symbol table input buffer
910 and set the variables that control fetching entries from it.
911 Reports an error if no data available.
912 This function can read past the end of the symbol table
913 (into the string table) but this does no harm. */
914
915 /* Create a new minimal symbol (using record_with_info).
916
917 Creation of all new minimal symbols should go through this function
918 rather than calling the various record functions in order
919 to make sure that all symbol addresses get properly relocated.
920
921 Arguments are:
922
923 NAME - the symbol's name (but if NAME starts with a period, that
924 leading period is discarded).
925 ADDRESS - the symbol's address, prior to relocation. This function
926 relocates the address before recording the minimal symbol.
927 MS_TYPE - the symbol's type.
928 N_SCNUM - the symbol's XCOFF section number.
929 OBJFILE - the objfile associated with the minimal symbol. */
930
931 static void
932 record_minimal_symbol (minimal_symbol_reader &reader,
933 const char *name, CORE_ADDR address,
934 enum minimal_symbol_type ms_type,
935 int n_scnum,
936 struct objfile *objfile)
937 {
938 if (name[0] == '.')
939 ++name;
940
941 reader.record_with_info (name, address, ms_type,
942 secnum_to_section (n_scnum, objfile));
943 }
944
945 /* xcoff has static blocks marked in `.bs', `.es' pairs. They cannot be
946 nested. At any given time, a symbol can only be in one static block.
947 This is the base address of current static block, zero if non exists. */
948
949 static int static_block_base = 0;
950
951 /* Section number for the current static block. */
952
953 static int static_block_section = -1;
954
955 /* true if space for symbol name has been allocated. */
956
957 static int symname_alloced = 0;
958
959 /* Next symbol to read. Pointer into raw seething symbol table. */
960
961 static char *raw_symbol;
962
963 /* This is the function which stabsread.c calls to get symbol
964 continuations. */
965
966 static const char *
967 xcoff_next_symbol_text (struct objfile *objfile)
968 {
969 struct internal_syment symbol;
970 const char *retval;
971
972 /* FIXME: is this the same as the passed arg? */
973 if (this_symtab_objfile)
974 objfile = this_symtab_objfile;
975
976 bfd_coff_swap_sym_in (objfile->obfd, raw_symbol, &symbol);
977 if (symbol.n_zeroes)
978 {
979 complaint (_("Unexpected symbol continuation"));
980
981 /* Return something which points to '\0' and hope the symbol reading
982 code does something reasonable. */
983 retval = "";
984 }
985 else if (symbol.n_sclass & 0x80)
986 {
987 retval = XCOFF_DATA (objfile)->debugsec + symbol.n_offset;
988 raw_symbol += coff_data (objfile->obfd)->local_symesz;
989 ++symnum;
990 }
991 else
992 {
993 complaint (_("Unexpected symbol continuation"));
994
995 /* Return something which points to '\0' and hope the symbol reading
996 code does something reasonable. */
997 retval = "";
998 }
999 return retval;
1000 }
1001
1002 /* Read symbols for a given partial symbol table. */
1003
1004 static void
1005 read_xcoff_symtab (struct objfile *objfile, struct partial_symtab *pst)
1006 {
1007 bfd *abfd = objfile->obfd;
1008 char *raw_auxptr; /* Pointer to first raw aux entry for sym. */
1009 struct coff_symfile_info *xcoff = XCOFF_DATA (objfile);
1010 char *strtbl = xcoff->strtbl;
1011 char *debugsec = xcoff->debugsec;
1012 const char *debugfmt = bfd_xcoff_is_xcoff64 (abfd) ? "XCOFF64" : "XCOFF";
1013
1014 struct internal_syment symbol[1];
1015 union internal_auxent main_aux;
1016 struct coff_symbol cs[1];
1017 CORE_ADDR file_start_addr = 0;
1018 CORE_ADDR file_end_addr = 0;
1019
1020 int next_file_symnum = -1;
1021 unsigned int max_symnum;
1022 int just_started = 1;
1023 int depth = 0;
1024 CORE_ADDR fcn_start_addr = 0;
1025
1026 struct coff_symbol fcn_stab_saved = { 0 };
1027
1028 /* fcn_cs_saved is global because process_xcoff_symbol needs it. */
1029 union internal_auxent fcn_aux_saved = main_aux;
1030 struct context_stack *newobj;
1031
1032 const char *filestring = pst->filename; /* Name of the current file. */
1033
1034 const char *last_csect_name; /* Last seen csect's name. */
1035
1036 this_symtab_psymtab = pst;
1037 this_symtab_objfile = objfile;
1038
1039 /* Get the appropriate COFF "constants" related to the file we're
1040 handling. */
1041 local_symesz = coff_data (abfd)->local_symesz;
1042
1043 set_last_source_file (NULL);
1044 last_csect_name = 0;
1045
1046 start_stabs ();
1047 start_symtab (objfile, filestring, (char *) NULL, file_start_addr,
1048 language_unknown);
1049 record_debugformat (debugfmt);
1050 symnum = ((struct symloc *) pst->read_symtab_private)->first_symnum;
1051 max_symnum =
1052 symnum + ((struct symloc *) pst->read_symtab_private)->numsyms;
1053 first_object_file_end = 0;
1054
1055 raw_symbol = xcoff->symtbl + symnum * local_symesz;
1056
1057 while (symnum < max_symnum)
1058 {
1059 QUIT; /* make this command interruptable. */
1060
1061 /* READ_ONE_SYMBOL (symbol, cs, symname_alloced); */
1062 /* read one symbol into `cs' structure. After processing the
1063 whole symbol table, only string table will be kept in memory,
1064 symbol table and debug section of xcoff will be freed. Thus
1065 we can mark symbols with names in string table as
1066 `alloced'. */
1067 {
1068 int ii;
1069
1070 /* Swap and align the symbol into a reasonable C structure. */
1071 bfd_coff_swap_sym_in (abfd, raw_symbol, symbol);
1072
1073 cs->c_symnum = symnum;
1074 cs->c_naux = symbol->n_numaux;
1075 if (symbol->n_zeroes)
1076 {
1077 symname_alloced = 0;
1078 /* We must use the original, unswapped, name here so the name field
1079 pointed to by cs->c_name will persist throughout xcoffread. If
1080 we use the new field, it gets overwritten for each symbol. */
1081 cs->c_name = ((struct external_syment *) raw_symbol)->e.e_name;
1082 /* If it's exactly E_SYMNMLEN characters long it isn't
1083 '\0'-terminated. */
1084 if (cs->c_name[E_SYMNMLEN - 1] != '\0')
1085 {
1086 char *p;
1087
1088 p = (char *) obstack_alloc (&objfile->objfile_obstack,
1089 E_SYMNMLEN + 1);
1090 strncpy (p, cs->c_name, E_SYMNMLEN);
1091 p[E_SYMNMLEN] = '\0';
1092 cs->c_name = p;
1093 symname_alloced = 1;
1094 }
1095 }
1096 else if (symbol->n_sclass & 0x80)
1097 {
1098 cs->c_name = debugsec + symbol->n_offset;
1099 symname_alloced = 0;
1100 }
1101 else
1102 {
1103 /* in string table */
1104 cs->c_name = strtbl + (int) symbol->n_offset;
1105 symname_alloced = 1;
1106 }
1107 cs->c_value = symbol->n_value;
1108 cs->c_sclass = symbol->n_sclass;
1109 cs->c_secnum = symbol->n_scnum;
1110 cs->c_type = (unsigned) symbol->n_type;
1111
1112 raw_symbol += local_symesz;
1113 ++symnum;
1114
1115 /* Save addr of first aux entry. */
1116 raw_auxptr = raw_symbol;
1117
1118 /* Skip all the auxents associated with this symbol. */
1119 for (ii = symbol->n_numaux; ii; --ii)
1120 {
1121 raw_symbol += coff_data (abfd)->local_auxesz;
1122 ++symnum;
1123 }
1124 }
1125
1126 /* if symbol name starts with ".$" or "$", ignore it. */
1127 if (cs->c_name[0] == '$'
1128 || (cs->c_name[1] == '$' && cs->c_name[0] == '.'))
1129 continue;
1130
1131 if (cs->c_symnum == next_file_symnum && cs->c_sclass != C_FILE)
1132 {
1133 if (get_last_source_file ())
1134 {
1135 pst->compunit_symtab = end_symtab (cur_src_end_addr,
1136 SECT_OFF_TEXT (objfile));
1137 end_stabs ();
1138 }
1139
1140 start_stabs ();
1141 start_symtab (objfile, "_globals_", (char *) NULL, (CORE_ADDR) 0,
1142 language_unknown);
1143 record_debugformat (debugfmt);
1144 cur_src_end_addr = first_object_file_end;
1145 /* Done with all files, everything from here on is globals. */
1146 }
1147
1148 if (cs->c_sclass == C_EXT || cs->c_sclass == C_HIDEXT ||
1149 cs->c_sclass == C_WEAKEXT)
1150 {
1151 /* Dealing with a symbol with a csect entry. */
1152
1153 #define CSECT(PP) ((PP)->x_csect)
1154 #define CSECT_LEN(PP) (CSECT(PP).x_scnlen.l)
1155 #define CSECT_ALIGN(PP) (SMTYP_ALIGN(CSECT(PP).x_smtyp))
1156 #define CSECT_SMTYP(PP) (SMTYP_SMTYP(CSECT(PP).x_smtyp))
1157 #define CSECT_SCLAS(PP) (CSECT(PP).x_smclas)
1158
1159 /* Convert the auxent to something we can access.
1160 XCOFF can have more than one auxiliary entries.
1161
1162 Actual functions will have two auxiliary entries, one to have the
1163 function size and other to have the smtype/smclass (LD/PR).
1164
1165 c_type value of main symbol table will be set only in case of
1166 C_EXT/C_HIDEEXT/C_WEAKEXT storage class symbols.
1167 Bit 10 of type is set if symbol is a function, ie the value is set
1168 to 32(0x20). So we need to read the first function auxiliay entry
1169 which contains the size. */
1170 if (cs->c_naux > 1 && ISFCN (cs->c_type))
1171 {
1172 /* a function entry point. */
1173
1174 fcn_start_addr = cs->c_value;
1175
1176 /* save the function header info, which will be used
1177 when `.bf' is seen. */
1178 fcn_cs_saved = *cs;
1179
1180 /* Convert the auxent to something we can access. */
1181 bfd_coff_swap_aux_in (abfd, raw_auxptr, cs->c_type, cs->c_sclass,
1182 0, cs->c_naux, &fcn_aux_saved);
1183 continue;
1184 }
1185 /* Read the csect auxiliary header, which is always the last by
1186 onvention. */
1187 bfd_coff_swap_aux_in (abfd,
1188 raw_auxptr
1189 + ((coff_data (abfd)->local_symesz)
1190 * (cs->c_naux - 1)),
1191 cs->c_type, cs->c_sclass,
1192 cs->c_naux - 1, cs->c_naux,
1193 &main_aux);
1194
1195 switch (CSECT_SMTYP (&main_aux))
1196 {
1197
1198 case XTY_ER:
1199 /* Ignore all external references. */
1200 continue;
1201
1202 case XTY_SD:
1203 /* A section description. */
1204 {
1205 switch (CSECT_SCLAS (&main_aux))
1206 {
1207
1208 case XMC_PR:
1209 {
1210
1211 /* A program csect is seen. We have to allocate one
1212 symbol table for each program csect. Normally gdb
1213 prefers one symtab for each source file. In case
1214 of AIX, one source file might include more than one
1215 [PR] csect, and they don't have to be adjacent in
1216 terms of the space they occupy in memory. Thus, one
1217 single source file might get fragmented in the
1218 memory and gdb's file start and end address
1219 approach does not work! GCC (and I think xlc) seem
1220 to put all the code in the unnamed program csect. */
1221
1222 if (last_csect_name)
1223 {
1224 complete_symtab (filestring, file_start_addr);
1225 cur_src_end_addr = file_end_addr;
1226 end_symtab (file_end_addr, SECT_OFF_TEXT (objfile));
1227 end_stabs ();
1228 start_stabs ();
1229 /* Give all csects for this source file the same
1230 name. */
1231 start_symtab (objfile, filestring, NULL,
1232 (CORE_ADDR) 0, language_unknown);
1233 record_debugformat (debugfmt);
1234 }
1235
1236 /* If this is the very first csect seen,
1237 basically `__start'. */
1238 if (just_started)
1239 {
1240 first_object_file_end
1241 = cs->c_value + CSECT_LEN (&main_aux);
1242 just_started = 0;
1243 }
1244
1245 file_start_addr =
1246 cs->c_value + ANOFFSET (objfile->section_offsets,
1247 SECT_OFF_TEXT (objfile));
1248 file_end_addr = file_start_addr + CSECT_LEN (&main_aux);
1249
1250 if (cs->c_name && (cs->c_name[0] == '.' || cs->c_name[0] == '@'))
1251 last_csect_name = cs->c_name;
1252 }
1253 continue;
1254
1255 /* All other symbols are put into the minimal symbol
1256 table only. */
1257
1258 case XMC_RW:
1259 continue;
1260
1261 case XMC_TC0:
1262 continue;
1263
1264 case XMC_TC:
1265 continue;
1266
1267 default:
1268 /* Ignore the symbol. */
1269 continue;
1270 }
1271 }
1272 break;
1273
1274 case XTY_LD:
1275
1276 switch (CSECT_SCLAS (&main_aux))
1277 {
1278 /* We never really come to this part as this case has been
1279 handled in ISFCN check above.
1280 This and other cases of XTY_LD are kept just for
1281 reference. */
1282 case XMC_PR:
1283 continue;
1284
1285 case XMC_GL:
1286 /* shared library function trampoline code entry point. */
1287 continue;
1288
1289 case XMC_DS:
1290 /* The symbols often have the same names as debug symbols for
1291 functions, and confuse lookup_symbol. */
1292 continue;
1293
1294 default:
1295 /* xlc puts each variable in a separate csect, so we get
1296 an XTY_SD for each variable. But gcc puts several
1297 variables in a csect, so that each variable only gets
1298 an XTY_LD. This will typically be XMC_RW; I suspect
1299 XMC_RO and XMC_BS might be possible too.
1300 These variables are put in the minimal symbol table
1301 only. */
1302 continue;
1303 }
1304 break;
1305
1306 case XTY_CM:
1307 /* Common symbols are put into the minimal symbol table only. */
1308 continue;
1309
1310 default:
1311 break;
1312 }
1313 }
1314
1315 switch (cs->c_sclass)
1316 {
1317 case C_FILE:
1318
1319 /* c_value field contains symnum of next .file entry in table
1320 or symnum of first global after last .file. */
1321
1322 next_file_symnum = cs->c_value;
1323
1324 /* Complete symbol table for last object file containing
1325 debugging information. */
1326
1327 /* Whether or not there was a csect in the previous file, we
1328 have to call `end_stabs' and `start_stabs' to reset
1329 type_vector, line_vector, etc. structures. */
1330
1331 complete_symtab (filestring, file_start_addr);
1332 cur_src_end_addr = file_end_addr;
1333 end_symtab (file_end_addr, SECT_OFF_TEXT (objfile));
1334 end_stabs ();
1335
1336 /* XCOFF, according to the AIX 3.2 documentation, puts the
1337 filename in cs->c_name. But xlc 1.3.0.2 has decided to
1338 do things the standard COFF way and put it in the auxent.
1339 We use the auxent if the symbol is ".file" and an auxent
1340 exists, otherwise use the symbol itself. Simple
1341 enough. */
1342 if (!strcmp (cs->c_name, ".file") && cs->c_naux > 0)
1343 {
1344 bfd_coff_swap_aux_in (abfd, raw_auxptr, cs->c_type, cs->c_sclass,
1345 0, cs->c_naux, &main_aux);
1346 filestring = coff_getfilename (&main_aux, objfile);
1347 }
1348 else
1349 filestring = cs->c_name;
1350
1351 start_stabs ();
1352 start_symtab (objfile, filestring, (char *) NULL, (CORE_ADDR) 0,
1353 language_unknown);
1354 record_debugformat (debugfmt);
1355 last_csect_name = 0;
1356
1357 /* reset file start and end addresses. A compilation unit
1358 with no text (only data) should have zero file
1359 boundaries. */
1360 file_start_addr = file_end_addr = 0;
1361 break;
1362
1363 case C_FUN:
1364 fcn_stab_saved = *cs;
1365 break;
1366
1367 case C_FCN:
1368 if (strcmp (cs->c_name, ".bf") == 0)
1369 {
1370 CORE_ADDR off = ANOFFSET (objfile->section_offsets,
1371 SECT_OFF_TEXT (objfile));
1372
1373 bfd_coff_swap_aux_in (abfd, raw_auxptr, cs->c_type, cs->c_sclass,
1374 0, cs->c_naux, &main_aux);
1375
1376 within_function = 1;
1377
1378 newobj = push_context (0, fcn_start_addr + off);
1379
1380 newobj->name = define_symbol
1381 (fcn_cs_saved.c_value + off,
1382 fcn_stab_saved.c_name, 0, 0, objfile);
1383 if (newobj->name != NULL)
1384 SYMBOL_SECTION (newobj->name) = SECT_OFF_TEXT (objfile);
1385 }
1386 else if (strcmp (cs->c_name, ".ef") == 0)
1387 {
1388 bfd_coff_swap_aux_in (abfd, raw_auxptr, cs->c_type, cs->c_sclass,
1389 0, cs->c_naux, &main_aux);
1390
1391 /* The value of .ef is the address of epilogue code;
1392 not useful for gdb. */
1393 /* { main_aux.x_sym.x_misc.x_lnsz.x_lnno
1394 contains number of lines to '}' */
1395
1396 if (outermost_context_p ())
1397 { /* We attempted to pop an empty context stack. */
1398 ef_complaint (cs->c_symnum);
1399 within_function = 0;
1400 break;
1401 }
1402 struct context_stack cstk = pop_context ();
1403 /* Stack must be empty now. */
1404 if (!outermost_context_p ())
1405 {
1406 ef_complaint (cs->c_symnum);
1407 within_function = 0;
1408 break;
1409 }
1410
1411 finish_block (cstk.name, cstk.old_blocks,
1412 NULL, cstk.start_addr,
1413 (fcn_cs_saved.c_value
1414 + fcn_aux_saved.x_sym.x_misc.x_fsize
1415 + ANOFFSET (objfile->section_offsets,
1416 SECT_OFF_TEXT (objfile))));
1417 within_function = 0;
1418 }
1419 break;
1420
1421 case C_BSTAT:
1422 /* Begin static block. */
1423 {
1424 struct internal_syment symbol;
1425
1426 read_symbol (&symbol, cs->c_value);
1427 static_block_base = symbol.n_value;
1428 static_block_section =
1429 secnum_to_section (symbol.n_scnum, objfile);
1430 }
1431 break;
1432
1433 case C_ESTAT:
1434 /* End of static block. */
1435 static_block_base = 0;
1436 static_block_section = -1;
1437 break;
1438
1439 case C_ARG:
1440 case C_REGPARM:
1441 case C_REG:
1442 case C_TPDEF:
1443 case C_STRTAG:
1444 case C_UNTAG:
1445 case C_ENTAG:
1446 {
1447 complaint (_("Unrecognized storage class %d."),
1448 cs->c_sclass);
1449 }
1450 break;
1451
1452 case C_LABEL:
1453 case C_NULL:
1454 /* Ignore these. */
1455 break;
1456
1457 case C_HIDEXT:
1458 case C_STAT:
1459 break;
1460
1461 case C_BINCL:
1462 /* beginning of include file */
1463 /* In xlc output, C_BINCL/C_EINCL pair doesn't show up in sorted
1464 order. Thus, when wee see them, we might not know enough info
1465 to process them. Thus, we'll be saving them into a table
1466 (inclTable) and postpone their processing. */
1467
1468 record_include_begin (cs);
1469 break;
1470
1471 case C_EINCL:
1472 /* End of include file. */
1473 /* See the comment after case C_BINCL. */
1474 record_include_end (cs);
1475 break;
1476
1477 case C_BLOCK:
1478 if (strcmp (cs->c_name, ".bb") == 0)
1479 {
1480 depth++;
1481 newobj = push_context (depth,
1482 (cs->c_value
1483 + ANOFFSET (objfile->section_offsets,
1484 SECT_OFF_TEXT (objfile))));
1485 }
1486 else if (strcmp (cs->c_name, ".eb") == 0)
1487 {
1488 if (outermost_context_p ())
1489 { /* We attempted to pop an empty context stack. */
1490 eb_complaint (cs->c_symnum);
1491 break;
1492 }
1493 struct context_stack cstk = pop_context ();
1494 if (depth-- != cstk.depth)
1495 {
1496 eb_complaint (cs->c_symnum);
1497 break;
1498 }
1499 if (*get_local_symbols () && !outermost_context_p ())
1500 {
1501 /* Make a block for the local symbols within. */
1502 finish_block (cstk.name,
1503 cstk.old_blocks, NULL,
1504 cstk.start_addr,
1505 (cs->c_value
1506 + ANOFFSET (objfile->section_offsets,
1507 SECT_OFF_TEXT (objfile))));
1508 }
1509 *get_local_symbols () = cstk.locals;
1510 }
1511 break;
1512
1513 default:
1514 process_xcoff_symbol (cs, objfile);
1515 break;
1516 }
1517 }
1518
1519 if (get_last_source_file ())
1520 {
1521 struct compunit_symtab *cust;
1522
1523 complete_symtab (filestring, file_start_addr);
1524 cur_src_end_addr = file_end_addr;
1525 cust = end_symtab (file_end_addr, SECT_OFF_TEXT (objfile));
1526 /* When reading symbols for the last C_FILE of the objfile, try
1527 to make sure that we set pst->compunit_symtab to the symtab for the
1528 file, not to the _globals_ symtab. I'm not sure whether this
1529 actually works right or when/if it comes up. */
1530 if (pst->compunit_symtab == NULL)
1531 pst->compunit_symtab = cust;
1532 end_stabs ();
1533 }
1534 }
1535
1536 #define SYMBOL_DUP(SYMBOL1, SYMBOL2) \
1537 (SYMBOL2) = XOBNEW (&objfile->objfile_obstack, struct symbol); \
1538 *(SYMBOL2) = *(SYMBOL1);
1539
1540
1541 #define SYMNAME_ALLOC(NAME, ALLOCED) \
1542 ((ALLOCED) ? (NAME) : obstack_copy0 (&objfile->objfile_obstack, \
1543 (NAME), strlen (NAME)))
1544
1545
1546 /* process one xcoff symbol. */
1547
1548 static struct symbol *
1549 process_xcoff_symbol (struct coff_symbol *cs, struct objfile *objfile)
1550 {
1551 struct symbol onesymbol;
1552 struct symbol *sym = &onesymbol;
1553 struct symbol *sym2 = NULL;
1554 char *name, *pp;
1555
1556 int sec;
1557 CORE_ADDR off;
1558
1559 if (cs->c_secnum < 0)
1560 {
1561 /* The value is a register number, offset within a frame, etc.,
1562 and does not get relocated. */
1563 off = 0;
1564 sec = -1;
1565 }
1566 else
1567 {
1568 sec = secnum_to_section (cs->c_secnum, objfile);
1569 off = ANOFFSET (objfile->section_offsets, sec);
1570 }
1571
1572 name = cs->c_name;
1573 if (name[0] == '.')
1574 ++name;
1575
1576 initialize_objfile_symbol (sym);
1577
1578 /* default assumptions */
1579 SYMBOL_VALUE_ADDRESS (sym) = cs->c_value + off;
1580 SYMBOL_DOMAIN (sym) = VAR_DOMAIN;
1581 SYMBOL_SECTION (sym) = secnum_to_section (cs->c_secnum, objfile);
1582
1583 if (ISFCN (cs->c_type))
1584 {
1585 /* At this point, we don't know the type of the function. This
1586 will be patched with the type from its stab entry later on in
1587 patch_block_stabs (), unless the file was compiled without -g. */
1588
1589 SYMBOL_SET_LINKAGE_NAME (sym, ((const char *)
1590 SYMNAME_ALLOC (name, symname_alloced)));
1591 SYMBOL_TYPE (sym) = objfile_type (objfile)->nodebug_text_symbol;
1592
1593 SYMBOL_ACLASS_INDEX (sym) = LOC_BLOCK;
1594 SYMBOL_DUP (sym, sym2);
1595
1596 if (cs->c_sclass == C_EXT || C_WEAKEXT)
1597 add_symbol_to_list (sym2, get_global_symbols ());
1598 else if (cs->c_sclass == C_HIDEXT || cs->c_sclass == C_STAT)
1599 add_symbol_to_list (sym2, get_file_symbols ());
1600 }
1601 else
1602 {
1603 /* In case we can't figure out the type, provide default. */
1604 SYMBOL_TYPE (sym) = objfile_type (objfile)->nodebug_data_symbol;
1605
1606 switch (cs->c_sclass)
1607 {
1608 #if 0
1609 /* The values of functions and global symbols are now resolved
1610 via the global_sym_chain in stabsread.c. */
1611 case C_FUN:
1612 if (fcn_cs_saved.c_sclass == C_EXT)
1613 add_stab_to_list (name, &global_stabs);
1614 else
1615 add_stab_to_list (name, &file_stabs);
1616 break;
1617
1618 case C_GSYM:
1619 add_stab_to_list (name, &global_stabs);
1620 break;
1621 #endif
1622
1623 case C_BCOMM:
1624 common_block_start (cs->c_name, objfile);
1625 break;
1626
1627 case C_ECOMM:
1628 common_block_end (objfile);
1629 break;
1630
1631 default:
1632 complaint (_("Unexpected storage class: %d"),
1633 cs->c_sclass);
1634 /* FALLTHROUGH */
1635
1636 case C_DECL:
1637 case C_PSYM:
1638 case C_RPSYM:
1639 case C_ECOML:
1640 case C_LSYM:
1641 case C_RSYM:
1642 case C_GSYM:
1643
1644 {
1645 sym = define_symbol (cs->c_value + off, cs->c_name, 0, 0, objfile);
1646 if (sym != NULL)
1647 {
1648 SYMBOL_SECTION (sym) = sec;
1649 }
1650 return sym;
1651 }
1652
1653 case C_STSYM:
1654
1655 /* For xlc (not GCC), the 'V' symbol descriptor is used for
1656 all statics and we need to distinguish file-scope versus
1657 function-scope using within_function. We do this by
1658 changing the string we pass to define_symbol to use 'S'
1659 where we need to, which is not necessarily super-clean,
1660 but seems workable enough. */
1661
1662 if (*name == ':')
1663 return NULL;
1664
1665 pp = strchr (name, ':');
1666 if (pp == NULL)
1667 return NULL;
1668
1669 ++pp;
1670 if (*pp == 'V' && !within_function)
1671 *pp = 'S';
1672 sym = define_symbol ((cs->c_value
1673 + ANOFFSET (objfile->section_offsets,
1674 static_block_section)),
1675 cs->c_name, 0, 0, objfile);
1676 if (sym != NULL)
1677 {
1678 SYMBOL_VALUE_ADDRESS (sym) += static_block_base;
1679 SYMBOL_SECTION (sym) = static_block_section;
1680 }
1681 return sym;
1682
1683 }
1684 }
1685 return sym2;
1686 }
1687
1688 /* Extract the file name from the aux entry of a C_FILE symbol.
1689 Result is in static storage and is only good for temporary use. */
1690
1691 static char *
1692 coff_getfilename (union internal_auxent *aux_entry, struct objfile *objfile)
1693 {
1694 static char buffer[BUFSIZ];
1695
1696 if (aux_entry->x_file.x_n.x_zeroes == 0)
1697 strcpy (buffer, (XCOFF_DATA (objfile)->strtbl
1698 + aux_entry->x_file.x_n.x_offset));
1699 else
1700 {
1701 strncpy (buffer, aux_entry->x_file.x_fname, FILNMLEN);
1702 buffer[FILNMLEN] = '\0';
1703 }
1704 return (buffer);
1705 }
1706
1707 /* Set *SYMBOL to symbol number symno in symtbl. */
1708 static void
1709 read_symbol (struct internal_syment *symbol, int symno)
1710 {
1711 struct coff_symfile_info *xcoff = XCOFF_DATA (this_symtab_objfile);
1712 int nsyms = xcoff->symtbl_num_syms;
1713 char *stbl = xcoff->symtbl;
1714
1715 if (symno < 0 || symno >= nsyms)
1716 {
1717 complaint (_("Invalid symbol offset"));
1718 symbol->n_value = 0;
1719 symbol->n_scnum = -1;
1720 return;
1721 }
1722 bfd_coff_swap_sym_in (this_symtab_objfile->obfd,
1723 stbl + (symno * local_symesz),
1724 symbol);
1725 }
1726
1727 /* Get value corresponding to symbol number symno in symtbl. */
1728
1729 static CORE_ADDR
1730 read_symbol_nvalue (int symno)
1731 {
1732 struct internal_syment symbol[1];
1733
1734 read_symbol (symbol, symno);
1735 return symbol->n_value;
1736 }
1737
1738
1739 /* Find the address of the function corresponding to symno, where
1740 symno is the symbol pointed to by the linetable. */
1741
1742 static int
1743 read_symbol_lineno (int symno)
1744 {
1745 struct objfile *objfile = this_symtab_objfile;
1746 int xcoff64 = bfd_xcoff_is_xcoff64 (objfile->obfd);
1747
1748 struct coff_symfile_info *info = XCOFF_DATA (objfile);
1749 int nsyms = info->symtbl_num_syms;
1750 char *stbl = info->symtbl;
1751 char *strtbl = info->strtbl;
1752
1753 struct internal_syment symbol[1];
1754 union internal_auxent main_aux[1];
1755
1756 if (symno < 0)
1757 {
1758 bf_notfound_complaint ();
1759 return 0;
1760 }
1761
1762 /* Note that just searching for a short distance (e.g. 50 symbols)
1763 is not enough, at least in the following case.
1764
1765 .extern foo
1766 [many .stabx entries]
1767 [a few functions, referring to foo]
1768 .globl foo
1769 .bf
1770
1771 What happens here is that the assembler moves the .stabx entries
1772 to right before the ".bf" for foo, but the symbol for "foo" is before
1773 all the stabx entries. See PR gdb/2222. */
1774
1775 /* Maintaining a table of .bf entries might be preferable to this search.
1776 If I understand things correctly it would need to be done only for
1777 the duration of a single psymtab to symtab conversion. */
1778 while (symno < nsyms)
1779 {
1780 bfd_coff_swap_sym_in (symfile_bfd,
1781 stbl + (symno * local_symesz), symbol);
1782 if (symbol->n_sclass == C_FCN)
1783 {
1784 char *name = xcoff64 ? strtbl + symbol->n_offset : symbol->n_name;
1785
1786 if (strcmp (name, ".bf") == 0)
1787 goto gotit;
1788 }
1789 symno += symbol->n_numaux + 1;
1790 }
1791
1792 bf_notfound_complaint ();
1793 return 0;
1794
1795 gotit:
1796 /* Take aux entry and return its lineno. */
1797 symno++;
1798 bfd_coff_swap_aux_in (objfile->obfd, stbl + symno * local_symesz,
1799 symbol->n_type, symbol->n_sclass,
1800 0, symbol->n_numaux, main_aux);
1801
1802 return main_aux->x_sym.x_misc.x_lnsz.x_lnno;
1803 }
1804
1805 /* Support for line number handling. */
1806
1807 /* This function is called for every section; it finds the outer limits
1808 * of the line table (minimum and maximum file offset) so that the
1809 * mainline code can read the whole thing for efficiency.
1810 */
1811 static void
1812 find_linenos (struct bfd *abfd, struct bfd_section *asect, void *vpinfo)
1813 {
1814 struct coff_symfile_info *info;
1815 int size, count;
1816 file_ptr offset, maxoff;
1817
1818 count = asect->lineno_count;
1819
1820 if (strcmp (asect->name, ".text") != 0 || count == 0)
1821 return;
1822
1823 size = count * coff_data (abfd)->local_linesz;
1824 info = (struct coff_symfile_info *) vpinfo;
1825 offset = asect->line_filepos;
1826 maxoff = offset + size;
1827
1828 if (offset < info->min_lineno_offset || info->min_lineno_offset == 0)
1829 info->min_lineno_offset = offset;
1830
1831 if (maxoff > info->max_lineno_offset)
1832 info->max_lineno_offset = maxoff;
1833 }
1834 \f
1835 static void
1836 xcoff_psymtab_to_symtab_1 (struct objfile *objfile, struct partial_symtab *pst)
1837 {
1838 int i;
1839
1840 if (!pst)
1841 return;
1842
1843 if (pst->readin)
1844 {
1845 fprintf_unfiltered
1846 (gdb_stderr, "Psymtab for %s already read in. Shouldn't happen.\n",
1847 pst->filename);
1848 return;
1849 }
1850
1851 /* Read in all partial symtabs on which this one is dependent. */
1852 for (i = 0; i < pst->number_of_dependencies; i++)
1853 if (!pst->dependencies[i]->readin)
1854 {
1855 /* Inform about additional files that need to be read in. */
1856 if (info_verbose)
1857 {
1858 fputs_filtered (" ", gdb_stdout);
1859 wrap_here ("");
1860 fputs_filtered ("and ", gdb_stdout);
1861 wrap_here ("");
1862 printf_filtered ("%s...", pst->dependencies[i]->filename);
1863 wrap_here (""); /* Flush output */
1864 gdb_flush (gdb_stdout);
1865 }
1866 xcoff_psymtab_to_symtab_1 (objfile, pst->dependencies[i]);
1867 }
1868
1869 if (((struct symloc *) pst->read_symtab_private)->numsyms != 0)
1870 {
1871 /* Init stuff necessary for reading in symbols. */
1872 stabsread_init ();
1873
1874 scoped_free_pendings free_pending;
1875 read_xcoff_symtab (objfile, pst);
1876 }
1877
1878 pst->readin = 1;
1879 }
1880
1881 /* Read in all of the symbols for a given psymtab for real.
1882 Be verbose about it if the user wants that. SELF is not NULL. */
1883
1884 static void
1885 xcoff_read_symtab (struct partial_symtab *self, struct objfile *objfile)
1886 {
1887 if (self->readin)
1888 {
1889 fprintf_unfiltered
1890 (gdb_stderr, "Psymtab for %s already read in. Shouldn't happen.\n",
1891 self->filename);
1892 return;
1893 }
1894
1895 if (((struct symloc *) self->read_symtab_private)->numsyms != 0
1896 || self->number_of_dependencies)
1897 {
1898 /* Print the message now, before reading the string table,
1899 to avoid disconcerting pauses. */
1900 if (info_verbose)
1901 {
1902 printf_filtered ("Reading in symbols for %s...", self->filename);
1903 gdb_flush (gdb_stdout);
1904 }
1905
1906 next_symbol_text_func = xcoff_next_symbol_text;
1907
1908 xcoff_psymtab_to_symtab_1 (objfile, self);
1909
1910 /* Match with global symbols. This only needs to be done once,
1911 after all of the symtabs and dependencies have been read in. */
1912 scan_file_globals (objfile);
1913
1914 /* Finish up the debug error message. */
1915 if (info_verbose)
1916 printf_filtered ("done.\n");
1917 }
1918 }
1919 \f
1920 static void
1921 xcoff_new_init (struct objfile *objfile)
1922 {
1923 stabsread_new_init ();
1924 }
1925
1926 /* Do initialization in preparation for reading symbols from OBJFILE.
1927
1928 We will only be called if this is an XCOFF or XCOFF-like file.
1929 BFD handles figuring out the format of the file, and code in symfile.c
1930 uses BFD's determination to vector to us. */
1931
1932 static void
1933 xcoff_symfile_init (struct objfile *objfile)
1934 {
1935 struct coff_symfile_info *xcoff;
1936
1937 /* Allocate struct to keep track of the symfile. */
1938 xcoff = XNEW (struct coff_symfile_info);
1939 set_objfile_data (objfile, xcoff_objfile_data_key, xcoff);
1940
1941 /* XCOFF objects may be reordered, so set OBJF_REORDERED. If we
1942 find this causes a significant slowdown in gdb then we could
1943 set it in the debug symbol readers only when necessary. */
1944 objfile->flags |= OBJF_REORDERED;
1945 }
1946
1947 /* Perform any local cleanups required when we are done with a particular
1948 objfile. I.E, we are in the process of discarding all symbol information
1949 for an objfile, freeing up all memory held for it, and unlinking the
1950 objfile struct from the global list of known objfiles. */
1951
1952 static void
1953 xcoff_symfile_finish (struct objfile *objfile)
1954 {
1955 /* Start with a fresh include table for the next objfile. */
1956 if (inclTable)
1957 {
1958 xfree (inclTable);
1959 inclTable = NULL;
1960 }
1961 inclIndx = inclLength = inclDepth = 0;
1962 }
1963
1964
1965 static void
1966 init_stringtab (bfd *abfd, file_ptr offset, struct objfile *objfile)
1967 {
1968 long length;
1969 int val;
1970 unsigned char lengthbuf[4];
1971 char *strtbl;
1972 struct coff_symfile_info *xcoff = XCOFF_DATA (objfile);
1973
1974 xcoff->strtbl = NULL;
1975
1976 if (bfd_seek (abfd, offset, SEEK_SET) < 0)
1977 error (_("cannot seek to string table in %s: %s"),
1978 bfd_get_filename (abfd), bfd_errmsg (bfd_get_error ()));
1979
1980 val = bfd_bread ((char *) lengthbuf, sizeof lengthbuf, abfd);
1981 length = bfd_h_get_32 (abfd, lengthbuf);
1982
1983 /* If no string table is needed, then the file may end immediately
1984 after the symbols. Just return with `strtbl' set to NULL. */
1985
1986 if (val != sizeof lengthbuf || length < sizeof lengthbuf)
1987 return;
1988
1989 /* Allocate string table from objfile_obstack. We will need this table
1990 as long as we have its symbol table around. */
1991
1992 strtbl = (char *) obstack_alloc (&objfile->objfile_obstack, length);
1993 xcoff->strtbl = strtbl;
1994
1995 /* Copy length buffer, the first byte is usually zero and is
1996 used for stabs with a name length of zero. */
1997 memcpy (strtbl, lengthbuf, sizeof lengthbuf);
1998 if (length == sizeof lengthbuf)
1999 return;
2000
2001 val = bfd_bread (strtbl + sizeof lengthbuf, length - sizeof lengthbuf, abfd);
2002
2003 if (val != length - sizeof lengthbuf)
2004 error (_("cannot read string table from %s: %s"),
2005 bfd_get_filename (abfd), bfd_errmsg (bfd_get_error ()));
2006 if (strtbl[length - 1] != '\0')
2007 error (_("bad symbol file: string table "
2008 "does not end with null character"));
2009
2010 return;
2011 }
2012 \f
2013 /* If we have not yet seen a function for this psymtab, this is 0. If we
2014 have seen one, it is the offset in the line numbers of the line numbers
2015 for the psymtab. */
2016 static unsigned int first_fun_line_offset;
2017
2018 /* Allocate and partially fill a partial symtab. It will be
2019 completely filled at the end of the symbol list.
2020
2021 SYMFILE_NAME is the name of the symbol-file we are reading from, and ADDR
2022 is the address relative to which its symbols are (incremental) or 0
2023 (normal). */
2024
2025 static struct partial_symtab *
2026 xcoff_start_psymtab (struct objfile *objfile,
2027 const char *filename, int first_symnum,
2028 std::vector<partial_symbol *> &global_psymbols,
2029 std::vector<partial_symbol *> &static_psymbols)
2030 {
2031 struct partial_symtab *result =
2032 start_psymtab_common (objfile,
2033 filename,
2034 /* We fill in textlow later. */
2035 0,
2036 global_psymbols, static_psymbols);
2037
2038 result->read_symtab_private =
2039 XOBNEW (&objfile->objfile_obstack, struct symloc);
2040 ((struct symloc *) result->read_symtab_private)->first_symnum = first_symnum;
2041 result->read_symtab = xcoff_read_symtab;
2042
2043 /* Deduce the source language from the filename for this psymtab. */
2044 psymtab_language = deduce_language_from_filename (filename);
2045
2046 return result;
2047 }
2048
2049 /* Close off the current usage of PST.
2050 Returns PST, or NULL if the partial symtab was empty and thrown away.
2051
2052 CAPPING_SYMBOL_NUMBER is the end of pst (exclusive).
2053
2054 INCLUDE_LIST, NUM_INCLUDES, DEPENDENCY_LIST, and NUMBER_DEPENDENCIES
2055 are the information for includes and dependencies. */
2056
2057 static struct partial_symtab *
2058 xcoff_end_psymtab (struct objfile *objfile, struct partial_symtab *pst,
2059 const char **include_list, int num_includes,
2060 int capping_symbol_number,
2061 struct partial_symtab **dependency_list,
2062 int number_dependencies, int textlow_not_set)
2063 {
2064 int i;
2065
2066 if (capping_symbol_number != -1)
2067 ((struct symloc *) pst->read_symtab_private)->numsyms =
2068 capping_symbol_number
2069 - ((struct symloc *) pst->read_symtab_private)->first_symnum;
2070 ((struct symloc *) pst->read_symtab_private)->lineno_off =
2071 first_fun_line_offset;
2072 first_fun_line_offset = 0;
2073
2074 end_psymtab_common (objfile, pst);
2075
2076 pst->number_of_dependencies = number_dependencies;
2077 if (number_dependencies)
2078 {
2079 pst->dependencies = XOBNEWVEC (&objfile->objfile_obstack,
2080 struct partial_symtab *,
2081 number_dependencies);
2082 memcpy (pst->dependencies, dependency_list,
2083 number_dependencies * sizeof (struct partial_symtab *));
2084 }
2085 else
2086 pst->dependencies = 0;
2087
2088 for (i = 0; i < num_includes; i++)
2089 {
2090 struct partial_symtab *subpst =
2091 allocate_psymtab (include_list[i], objfile);
2092
2093 subpst->read_symtab_private = XOBNEW (&objfile->objfile_obstack, symloc);
2094 ((struct symloc *) subpst->read_symtab_private)->first_symnum = 0;
2095 ((struct symloc *) subpst->read_symtab_private)->numsyms = 0;
2096
2097 /* We could save slight bits of space by only making one of these,
2098 shared by the entire set of include files. FIXME-someday. */
2099 subpst->dependencies =
2100 XOBNEW (&objfile->objfile_obstack, struct partial_symtab *);
2101 subpst->dependencies[0] = pst;
2102 subpst->number_of_dependencies = 1;
2103
2104 subpst->globals_offset =
2105 subpst->n_global_syms =
2106 subpst->statics_offset =
2107 subpst->n_static_syms = 0;
2108
2109 subpst->readin = 0;
2110 subpst->compunit_symtab = NULL;
2111 subpst->read_symtab = pst->read_symtab;
2112 }
2113
2114 if (num_includes == 0
2115 && number_dependencies == 0
2116 && pst->n_global_syms == 0
2117 && pst->n_static_syms == 0)
2118 {
2119 /* Throw away this psymtab, it's empty. We can't deallocate it, since
2120 it is on the obstack, but we can forget to chain it on the list. */
2121 /* Empty psymtabs happen as a result of header files which don't have
2122 any symbols in them. There can be a lot of them. */
2123
2124 discard_psymtab (objfile, pst);
2125
2126 /* Indicate that psymtab was thrown away. */
2127 pst = NULL;
2128 }
2129 return pst;
2130 }
2131
2132 /* Swap raw symbol at *RAW and put the name in *NAME, the symbol in
2133 *SYMBOL, the first auxent in *AUX. Advance *RAW and *SYMNUMP over
2134 the symbol and its auxents. */
2135
2136 static void
2137 swap_sym (struct internal_syment *symbol, union internal_auxent *aux,
2138 const char **name, char **raw, unsigned int *symnump,
2139 struct objfile *objfile)
2140 {
2141 bfd_coff_swap_sym_in (objfile->obfd, *raw, symbol);
2142 if (symbol->n_zeroes)
2143 {
2144 /* If it's exactly E_SYMNMLEN characters long it isn't
2145 '\0'-terminated. */
2146 if (symbol->n_name[E_SYMNMLEN - 1] != '\0')
2147 {
2148 /* FIXME: wastes memory for symbols which we don't end up putting
2149 into the minimal symbols. */
2150 char *p;
2151
2152 p = (char *) obstack_alloc (&objfile->objfile_obstack,
2153 E_SYMNMLEN + 1);
2154 strncpy (p, symbol->n_name, E_SYMNMLEN);
2155 p[E_SYMNMLEN] = '\0';
2156 *name = p;
2157 }
2158 else
2159 /* Point to the unswapped name as that persists as long as the
2160 objfile does. */
2161 *name = ((struct external_syment *) *raw)->e.e_name;
2162 }
2163 else if (symbol->n_sclass & 0x80)
2164 {
2165 *name = XCOFF_DATA (objfile)->debugsec + symbol->n_offset;
2166 }
2167 else
2168 {
2169 *name = XCOFF_DATA (objfile)->strtbl + symbol->n_offset;
2170 }
2171 ++*symnump;
2172 *raw += coff_data (objfile->obfd)->local_symesz;
2173 if (symbol->n_numaux > 0)
2174 {
2175 bfd_coff_swap_aux_in (objfile->obfd, *raw, symbol->n_type,
2176 symbol->n_sclass, 0, symbol->n_numaux, aux);
2177
2178 *symnump += symbol->n_numaux;
2179 *raw += coff_data (objfile->obfd)->local_symesz * symbol->n_numaux;
2180 }
2181 }
2182
2183 static void
2184 function_outside_compilation_unit_complaint (const char *arg1)
2185 {
2186 complaint (_("function `%s' appears to be defined "
2187 "outside of all compilation units"),
2188 arg1);
2189 }
2190
2191 static void
2192 scan_xcoff_symtab (minimal_symbol_reader &reader,
2193 struct objfile *objfile)
2194 {
2195 struct gdbarch *gdbarch = get_objfile_arch (objfile);
2196 CORE_ADDR toc_offset = 0; /* toc offset value in data section. */
2197 const char *filestring = NULL;
2198
2199 const char *namestring;
2200 bfd *abfd;
2201 asection *bfd_sect;
2202 unsigned int nsyms;
2203
2204 /* Current partial symtab */
2205 struct partial_symtab *pst;
2206
2207 /* List of current psymtab's include files. */
2208 const char **psymtab_include_list;
2209 int includes_allocated;
2210 int includes_used;
2211
2212 /* Index within current psymtab dependency list. */
2213 struct partial_symtab **dependency_list;
2214 int dependencies_used, dependencies_allocated;
2215
2216 char *sraw_symbol;
2217 struct internal_syment symbol;
2218 union internal_auxent main_aux[5];
2219 unsigned int ssymnum;
2220
2221 const char *last_csect_name = NULL; /* Last seen csect's name and value. */
2222 CORE_ADDR last_csect_val = 0;
2223 int last_csect_sec = 0;
2224 int misc_func_recorded = 0; /* true if any misc. function. */
2225 int textlow_not_set = 1;
2226
2227 pst = (struct partial_symtab *) 0;
2228
2229 includes_allocated = 30;
2230 includes_used = 0;
2231 psymtab_include_list = (const char **) alloca (includes_allocated *
2232 sizeof (const char *));
2233
2234 dependencies_allocated = 30;
2235 dependencies_used = 0;
2236 dependency_list =
2237 (struct partial_symtab **) alloca (dependencies_allocated *
2238 sizeof (struct partial_symtab *));
2239
2240 set_last_source_file (NULL);
2241
2242 abfd = objfile->obfd;
2243 next_symbol_text_func = xcoff_next_symbol_text;
2244
2245 sraw_symbol = XCOFF_DATA (objfile)->symtbl;
2246 nsyms = XCOFF_DATA (objfile)->symtbl_num_syms;
2247 ssymnum = 0;
2248 while (ssymnum < nsyms)
2249 {
2250 int sclass;
2251
2252 QUIT;
2253
2254 bfd_coff_swap_sym_in (abfd, sraw_symbol, &symbol);
2255 sclass = symbol.n_sclass;
2256
2257 switch (sclass)
2258 {
2259 case C_EXT:
2260 case C_HIDEXT:
2261 case C_WEAKEXT:
2262 {
2263 /* The CSECT auxent--always the last auxent. */
2264 union internal_auxent csect_aux;
2265 unsigned int symnum_before = ssymnum;
2266
2267 swap_sym (&symbol, &main_aux[0], &namestring, &sraw_symbol,
2268 &ssymnum, objfile);
2269 if (symbol.n_numaux > 1)
2270 {
2271 bfd_coff_swap_aux_in
2272 (objfile->obfd,
2273 sraw_symbol - coff_data (abfd)->local_symesz,
2274 symbol.n_type,
2275 symbol.n_sclass,
2276 symbol.n_numaux - 1,
2277 symbol.n_numaux,
2278 &csect_aux);
2279 }
2280 else
2281 csect_aux = main_aux[0];
2282
2283 /* If symbol name starts with ".$" or "$", ignore it. */
2284 if (namestring[0] == '$'
2285 || (namestring[0] == '.' && namestring[1] == '$'))
2286 break;
2287
2288 switch (csect_aux.x_csect.x_smtyp & 0x7)
2289 {
2290 case XTY_SD:
2291 switch (csect_aux.x_csect.x_smclas)
2292 {
2293 case XMC_PR:
2294 if (last_csect_name)
2295 {
2296 /* If no misc. function recorded in the last
2297 seen csect, enter it as a function. This
2298 will take care of functions like strcmp()
2299 compiled by xlc. */
2300
2301 if (!misc_func_recorded)
2302 {
2303 record_minimal_symbol
2304 (reader, last_csect_name, last_csect_val,
2305 mst_text, last_csect_sec, objfile);
2306 misc_func_recorded = 1;
2307 }
2308
2309 if (pst != NULL)
2310 {
2311 /* We have to allocate one psymtab for
2312 each program csect, because their text
2313 sections need not be adjacent. */
2314 xcoff_end_psymtab
2315 (objfile, pst, psymtab_include_list,
2316 includes_used, symnum_before, dependency_list,
2317 dependencies_used, textlow_not_set);
2318 includes_used = 0;
2319 dependencies_used = 0;
2320 /* Give all psymtabs for this source file the same
2321 name. */
2322 pst = xcoff_start_psymtab
2323 (objfile,
2324 filestring,
2325 symnum_before,
2326 objfile->global_psymbols,
2327 objfile->static_psymbols);
2328 }
2329 }
2330 /* Activate the misc_func_recorded mechanism for
2331 compiler- and linker-generated CSECTs like ".strcmp"
2332 and "@FIX1". */
2333 if (namestring && (namestring[0] == '.'
2334 || namestring[0] == '@'))
2335 {
2336 last_csect_name = namestring;
2337 last_csect_val = symbol.n_value;
2338 last_csect_sec = symbol.n_scnum;
2339 }
2340 if (pst != NULL)
2341 {
2342 CORE_ADDR highval =
2343 symbol.n_value + csect_aux.x_csect.x_scnlen.l;
2344
2345 if (highval > pst->raw_text_high ())
2346 pst->set_text_high (highval);
2347 if (!pst->text_low_valid
2348 || symbol.n_value < pst->raw_text_low ())
2349 pst->set_text_low (symbol.n_value);
2350 }
2351 misc_func_recorded = 0;
2352 break;
2353
2354 case XMC_RW:
2355 case XMC_TD:
2356 /* Data variables are recorded in the minimal symbol
2357 table, except for section symbols. */
2358 if (*namestring != '.')
2359 record_minimal_symbol
2360 (reader, namestring, symbol.n_value,
2361 sclass == C_HIDEXT ? mst_file_data : mst_data,
2362 symbol.n_scnum, objfile);
2363 break;
2364
2365 case XMC_TC0:
2366 if (toc_offset)
2367 warning (_("More than one XMC_TC0 symbol found."));
2368 toc_offset = symbol.n_value;
2369
2370 /* Make TOC offset relative to start address of
2371 section. */
2372 bfd_sect = secnum_to_bfd_section (symbol.n_scnum, objfile);
2373 if (bfd_sect)
2374 toc_offset -= bfd_section_vma (objfile->obfd, bfd_sect);
2375 break;
2376
2377 case XMC_TC:
2378 /* These symbols tell us where the TOC entry for a
2379 variable is, not the variable itself. */
2380 break;
2381
2382 default:
2383 break;
2384 }
2385 break;
2386
2387 case XTY_LD:
2388 switch (csect_aux.x_csect.x_smclas)
2389 {
2390 case XMC_PR:
2391 /* A function entry point. */
2392
2393 if (first_fun_line_offset == 0 && symbol.n_numaux > 1)
2394 first_fun_line_offset =
2395 main_aux[0].x_sym.x_fcnary.x_fcn.x_lnnoptr;
2396
2397 record_minimal_symbol
2398 (reader, namestring, symbol.n_value,
2399 sclass == C_HIDEXT ? mst_file_text : mst_text,
2400 symbol.n_scnum, objfile);
2401 misc_func_recorded = 1;
2402 break;
2403
2404 case XMC_GL:
2405 /* shared library function trampoline code entry
2406 point. */
2407
2408 /* record trampoline code entries as
2409 mst_solib_trampoline symbol. When we lookup mst
2410 symbols, we will choose mst_text over
2411 mst_solib_trampoline. */
2412 record_minimal_symbol
2413 (reader, namestring, symbol.n_value,
2414 mst_solib_trampoline, symbol.n_scnum, objfile);
2415 misc_func_recorded = 1;
2416 break;
2417
2418 case XMC_DS:
2419 /* The symbols often have the same names as
2420 debug symbols for functions, and confuse
2421 lookup_symbol. */
2422 break;
2423
2424 default:
2425
2426 /* xlc puts each variable in a separate csect,
2427 so we get an XTY_SD for each variable. But
2428 gcc puts several variables in a csect, so
2429 that each variable only gets an XTY_LD. We
2430 still need to record them. This will
2431 typically be XMC_RW; I suspect XMC_RO and
2432 XMC_BS might be possible too. */
2433 if (*namestring != '.')
2434 record_minimal_symbol
2435 (reader, namestring, symbol.n_value,
2436 sclass == C_HIDEXT ? mst_file_data : mst_data,
2437 symbol.n_scnum, objfile);
2438 break;
2439 }
2440 break;
2441
2442 case XTY_CM:
2443 switch (csect_aux.x_csect.x_smclas)
2444 {
2445 case XMC_RW:
2446 case XMC_BS:
2447 /* Common variables are recorded in the minimal symbol
2448 table, except for section symbols. */
2449 if (*namestring != '.')
2450 record_minimal_symbol
2451 (reader, namestring, symbol.n_value,
2452 sclass == C_HIDEXT ? mst_file_bss : mst_bss,
2453 symbol.n_scnum, objfile);
2454 break;
2455 }
2456 break;
2457
2458 default:
2459 break;
2460 }
2461 }
2462 break;
2463 case C_FILE:
2464 {
2465 unsigned int symnum_before;
2466
2467 symnum_before = ssymnum;
2468 swap_sym (&symbol, &main_aux[0], &namestring, &sraw_symbol,
2469 &ssymnum, objfile);
2470
2471 /* See if the last csect needs to be recorded. */
2472
2473 if (last_csect_name && !misc_func_recorded)
2474 {
2475 /* If no misc. function recorded in the last seen csect, enter
2476 it as a function. This will take care of functions like
2477 strcmp() compiled by xlc. */
2478
2479 record_minimal_symbol (reader, last_csect_name, last_csect_val,
2480 mst_text, last_csect_sec, objfile);
2481 misc_func_recorded = 1;
2482 }
2483
2484 if (pst)
2485 {
2486 xcoff_end_psymtab (objfile, pst, psymtab_include_list,
2487 includes_used, symnum_before,
2488 dependency_list, dependencies_used,
2489 textlow_not_set);
2490 includes_used = 0;
2491 dependencies_used = 0;
2492 }
2493 first_fun_line_offset = 0;
2494
2495 /* XCOFF, according to the AIX 3.2 documentation, puts the
2496 filename in cs->c_name. But xlc 1.3.0.2 has decided to
2497 do things the standard COFF way and put it in the auxent.
2498 We use the auxent if the symbol is ".file" and an auxent
2499 exists, otherwise use the symbol itself. */
2500 if (!strcmp (namestring, ".file") && symbol.n_numaux > 0)
2501 {
2502 filestring = coff_getfilename (&main_aux[0], objfile);
2503 }
2504 else
2505 filestring = namestring;
2506
2507 pst = xcoff_start_psymtab (objfile,
2508 filestring,
2509 symnum_before,
2510 objfile->global_psymbols,
2511 objfile->static_psymbols);
2512 last_csect_name = NULL;
2513 }
2514 break;
2515
2516 default:
2517 {
2518 complaint (_("Storage class %d not recognized during scan"),
2519 sclass);
2520 }
2521 /* FALLTHROUGH */
2522
2523 case C_FCN:
2524 /* C_FCN is .bf and .ef symbols. I think it is sufficient
2525 to handle only the C_FUN and C_EXT. */
2526
2527 case C_BSTAT:
2528 case C_ESTAT:
2529 case C_ARG:
2530 case C_REGPARM:
2531 case C_REG:
2532 case C_TPDEF:
2533 case C_STRTAG:
2534 case C_UNTAG:
2535 case C_ENTAG:
2536 case C_LABEL:
2537 case C_NULL:
2538
2539 /* C_EINCL means we are switching back to the main file. But there
2540 is no reason to care; the only thing we want to know about
2541 includes is the names of all the included (.h) files. */
2542 case C_EINCL:
2543
2544 case C_BLOCK:
2545
2546 /* I don't think C_STAT is used in xcoff; C_HIDEXT appears to be
2547 used instead. */
2548 case C_STAT:
2549
2550 /* I don't think the name of the common block (as opposed to the
2551 variables within it) is something which is user visible
2552 currently. */
2553 case C_BCOMM:
2554 case C_ECOMM:
2555
2556 case C_PSYM:
2557 case C_RPSYM:
2558
2559 /* I think we can ignore C_LSYM; types on xcoff seem to use C_DECL
2560 so C_LSYM would appear to be only for locals. */
2561 case C_LSYM:
2562
2563 case C_AUTO:
2564 case C_RSYM:
2565 {
2566 /* We probably could save a few instructions by assuming that
2567 C_LSYM, C_PSYM, etc., never have auxents. */
2568 int naux1 = symbol.n_numaux + 1;
2569
2570 ssymnum += naux1;
2571 sraw_symbol += bfd_coff_symesz (abfd) * naux1;
2572 }
2573 break;
2574
2575 case C_BINCL:
2576 {
2577 /* Mark down an include file in the current psymtab. */
2578 enum language tmp_language;
2579
2580 swap_sym (&symbol, &main_aux[0], &namestring, &sraw_symbol,
2581 &ssymnum, objfile);
2582
2583 tmp_language = deduce_language_from_filename (namestring);
2584
2585 /* Only change the psymtab's language if we've learned
2586 something useful (eg. tmp_language is not language_unknown).
2587 In addition, to match what start_subfile does, never change
2588 from C++ to C. */
2589 if (tmp_language != language_unknown
2590 && (tmp_language != language_c
2591 || psymtab_language != language_cplus))
2592 psymtab_language = tmp_language;
2593
2594 /* In C++, one may expect the same filename to come round many
2595 times, when code is coming alternately from the main file
2596 and from inline functions in other files. So I check to see
2597 if this is a file we've seen before -- either the main
2598 source file, or a previously included file.
2599
2600 This seems to be a lot of time to be spending on N_SOL, but
2601 things like "break c-exp.y:435" need to work (I
2602 suppose the psymtab_include_list could be hashed or put
2603 in a binary tree, if profiling shows this is a major hog). */
2604 if (pst && strcmp (namestring, pst->filename) == 0)
2605 continue;
2606
2607 {
2608 int i;
2609
2610 for (i = 0; i < includes_used; i++)
2611 if (strcmp (namestring, psymtab_include_list[i]) == 0)
2612 {
2613 i = -1;
2614 break;
2615 }
2616 if (i == -1)
2617 continue;
2618 }
2619 psymtab_include_list[includes_used++] = namestring;
2620 if (includes_used >= includes_allocated)
2621 {
2622 const char **orig = psymtab_include_list;
2623
2624 psymtab_include_list = (const char **)
2625 alloca ((includes_allocated *= 2) *
2626 sizeof (const char *));
2627 memcpy (psymtab_include_list, orig,
2628 includes_used * sizeof (const char *));
2629 }
2630 continue;
2631 }
2632 case C_FUN:
2633 /* The value of the C_FUN is not the address of the function (it
2634 appears to be the address before linking), but as long as it
2635 is smaller than the actual address, then find_pc_partial_function
2636 will use the minimal symbols instead. I hope. */
2637
2638 case C_GSYM:
2639 case C_ECOML:
2640 case C_DECL:
2641 case C_STSYM:
2642 {
2643 const char *p;
2644
2645 swap_sym (&symbol, &main_aux[0], &namestring, &sraw_symbol,
2646 &ssymnum, objfile);
2647
2648 p = strchr (namestring, ':');
2649 if (!p)
2650 continue; /* Not a debugging symbol. */
2651
2652 /* Main processing section for debugging symbols which
2653 the initial read through the symbol tables needs to worry
2654 about. If we reach this point, the symbol which we are
2655 considering is definitely one we are interested in.
2656 p must also contain the (valid) index into the namestring
2657 which indicates the debugging type symbol. */
2658
2659 switch (p[1])
2660 {
2661 case 'S':
2662 if (gdbarch_static_transform_name_p (gdbarch))
2663 namestring = gdbarch_static_transform_name
2664 (gdbarch, namestring);
2665
2666 add_psymbol_to_list (namestring, p - namestring, 1,
2667 VAR_DOMAIN, LOC_STATIC,
2668 SECT_OFF_DATA (objfile),
2669 &objfile->static_psymbols,
2670 symbol.n_value,
2671 psymtab_language, objfile);
2672 continue;
2673
2674 case 'G':
2675 /* The addresses in these entries are reported to be
2676 wrong. See the code that reads 'G's for symtabs. */
2677 add_psymbol_to_list (namestring, p - namestring, 1,
2678 VAR_DOMAIN, LOC_STATIC,
2679 SECT_OFF_DATA (objfile),
2680 &objfile->global_psymbols,
2681 symbol.n_value,
2682 psymtab_language, objfile);
2683 continue;
2684
2685 case 'T':
2686 /* When a 'T' entry is defining an anonymous enum, it
2687 may have a name which is the empty string, or a
2688 single space. Since they're not really defining a
2689 symbol, those shouldn't go in the partial symbol
2690 table. We do pick up the elements of such enums at
2691 'check_enum:', below. */
2692 if (p >= namestring + 2
2693 || (p == namestring + 1
2694 && namestring[0] != ' '))
2695 {
2696 add_psymbol_to_list (namestring, p - namestring, 1,
2697 STRUCT_DOMAIN, LOC_TYPEDEF, -1,
2698 &objfile->static_psymbols,
2699 0, psymtab_language, objfile);
2700 if (p[2] == 't')
2701 {
2702 /* Also a typedef with the same name. */
2703 add_psymbol_to_list (namestring, p - namestring, 1,
2704 VAR_DOMAIN, LOC_TYPEDEF, -1,
2705 &objfile->static_psymbols,
2706 0, psymtab_language, objfile);
2707 p += 1;
2708 }
2709 }
2710 goto check_enum;
2711
2712 case 't':
2713 if (p != namestring) /* a name is there, not just :T... */
2714 {
2715 add_psymbol_to_list (namestring, p - namestring, 1,
2716 VAR_DOMAIN, LOC_TYPEDEF, -1,
2717 &objfile->static_psymbols,
2718 0, psymtab_language, objfile);
2719 }
2720 check_enum:
2721 /* If this is an enumerated type, we need to
2722 add all the enum constants to the partial symbol
2723 table. This does not cover enums without names, e.g.
2724 "enum {a, b} c;" in C, but fortunately those are
2725 rare. There is no way for GDB to find those from the
2726 enum type without spending too much time on it. Thus
2727 to solve this problem, the compiler needs to put out the
2728 enum in a nameless type. GCC2 does this. */
2729
2730 /* We are looking for something of the form
2731 <name> ":" ("t" | "T") [<number> "="] "e"
2732 {<constant> ":" <value> ","} ";". */
2733
2734 /* Skip over the colon and the 't' or 'T'. */
2735 p += 2;
2736 /* This type may be given a number. Also, numbers can come
2737 in pairs like (0,26). Skip over it. */
2738 while ((*p >= '0' && *p <= '9')
2739 || *p == '(' || *p == ',' || *p == ')'
2740 || *p == '=')
2741 p++;
2742
2743 if (*p++ == 'e')
2744 {
2745 /* The aix4 compiler emits extra crud before the
2746 members. */
2747 if (*p == '-')
2748 {
2749 /* Skip over the type (?). */
2750 while (*p != ':')
2751 p++;
2752
2753 /* Skip over the colon. */
2754 p++;
2755 }
2756
2757 /* We have found an enumerated type. */
2758 /* According to comments in read_enum_type
2759 a comma could end it instead of a semicolon.
2760 I don't know where that happens.
2761 Accept either. */
2762 while (*p && *p != ';' && *p != ',')
2763 {
2764 const char *q;
2765
2766 /* Check for and handle cretinous dbx symbol name
2767 continuation! */
2768 if (*p == '\\' || (*p == '?' && p[1] == '\0'))
2769 p = next_symbol_text (objfile);
2770
2771 /* Point to the character after the name
2772 of the enum constant. */
2773 for (q = p; *q && *q != ':'; q++)
2774 ;
2775 /* Note that the value doesn't matter for
2776 enum constants in psymtabs, just in symtabs. */
2777 add_psymbol_to_list (p, q - p, 1,
2778 VAR_DOMAIN, LOC_CONST, -1,
2779 &objfile->static_psymbols,
2780 0, psymtab_language, objfile);
2781 /* Point past the name. */
2782 p = q;
2783 /* Skip over the value. */
2784 while (*p && *p != ',')
2785 p++;
2786 /* Advance past the comma. */
2787 if (*p)
2788 p++;
2789 }
2790 }
2791 continue;
2792
2793 case 'c':
2794 /* Constant, e.g. from "const" in Pascal. */
2795 add_psymbol_to_list (namestring, p - namestring, 1,
2796 VAR_DOMAIN, LOC_CONST, -1,
2797 &objfile->static_psymbols,
2798 0, psymtab_language, objfile);
2799 continue;
2800
2801 case 'f':
2802 if (! pst)
2803 {
2804 int name_len = p - namestring;
2805 char *name = (char *) xmalloc (name_len + 1);
2806
2807 memcpy (name, namestring, name_len);
2808 name[name_len] = '\0';
2809 function_outside_compilation_unit_complaint (name);
2810 xfree (name);
2811 }
2812 add_psymbol_to_list (namestring, p - namestring, 1,
2813 VAR_DOMAIN, LOC_BLOCK,
2814 SECT_OFF_TEXT (objfile),
2815 &objfile->static_psymbols,
2816 symbol.n_value,
2817 psymtab_language, objfile);
2818 continue;
2819
2820 /* Global functions were ignored here, but now they
2821 are put into the global psymtab like one would expect.
2822 They're also in the minimal symbol table. */
2823 case 'F':
2824 if (! pst)
2825 {
2826 int name_len = p - namestring;
2827 char *name = (char *) xmalloc (name_len + 1);
2828
2829 memcpy (name, namestring, name_len);
2830 name[name_len] = '\0';
2831 function_outside_compilation_unit_complaint (name);
2832 xfree (name);
2833 }
2834
2835 /* We need only the minimal symbols for these
2836 loader-generated definitions. Keeping the global
2837 symbols leads to "in psymbols but not in symbols"
2838 errors. */
2839 if (startswith (namestring, "@FIX"))
2840 continue;
2841
2842 add_psymbol_to_list (namestring, p - namestring, 1,
2843 VAR_DOMAIN, LOC_BLOCK,
2844 SECT_OFF_TEXT (objfile),
2845 &objfile->global_psymbols,
2846 symbol.n_value,
2847 psymtab_language, objfile);
2848 continue;
2849
2850 /* Two things show up here (hopefully); static symbols of
2851 local scope (static used inside braces) or extensions
2852 of structure symbols. We can ignore both. */
2853 case 'V':
2854 case '(':
2855 case '0':
2856 case '1':
2857 case '2':
2858 case '3':
2859 case '4':
2860 case '5':
2861 case '6':
2862 case '7':
2863 case '8':
2864 case '9':
2865 case '-':
2866 case '#': /* For symbol identification (used in
2867 live ranges). */
2868 continue;
2869
2870 case ':':
2871 /* It is a C++ nested symbol. We don't need to record it
2872 (I don't think); if we try to look up foo::bar::baz,
2873 then symbols for the symtab containing foo should get
2874 read in, I think. */
2875 /* Someone says sun cc puts out symbols like
2876 /foo/baz/maclib::/usr/local/bin/maclib,
2877 which would get here with a symbol type of ':'. */
2878 continue;
2879
2880 default:
2881 /* Unexpected symbol descriptor. The second and
2882 subsequent stabs of a continued stab can show up
2883 here. The question is whether they ever can mimic
2884 a normal stab--it would be nice if not, since we
2885 certainly don't want to spend the time searching to
2886 the end of every string looking for a
2887 backslash. */
2888
2889 complaint (_("unknown symbol descriptor `%c'"), p[1]);
2890
2891 /* Ignore it; perhaps it is an extension that we don't
2892 know about. */
2893 continue;
2894 }
2895 }
2896 }
2897 }
2898
2899 if (pst)
2900 {
2901 xcoff_end_psymtab (objfile, pst, psymtab_include_list, includes_used,
2902 ssymnum, dependency_list,
2903 dependencies_used, textlow_not_set);
2904 }
2905
2906 /* Record the toc offset value of this symbol table into objfile
2907 structure. If no XMC_TC0 is found, toc_offset should be zero.
2908 Another place to obtain this information would be file auxiliary
2909 header. */
2910
2911 XCOFF_DATA (objfile)->toc_offset = toc_offset;
2912 }
2913
2914 /* Return the toc offset value for a given objfile. */
2915
2916 CORE_ADDR
2917 xcoff_get_toc_offset (struct objfile *objfile)
2918 {
2919 if (objfile)
2920 return XCOFF_DATA (objfile)->toc_offset;
2921 return 0;
2922 }
2923
2924 /* Scan and build partial symbols for a symbol file.
2925 We have been initialized by a call to dbx_symfile_init, which
2926 put all the relevant info into a "struct dbx_symfile_info",
2927 hung off the objfile structure.
2928
2929 SECTION_OFFSETS contains offsets relative to which the symbols in the
2930 various sections are (depending where the sections were actually
2931 loaded). */
2932
2933 static void
2934 xcoff_initial_scan (struct objfile *objfile, symfile_add_flags symfile_flags)
2935 {
2936 bfd *abfd;
2937 int val;
2938 int num_symbols; /* # of symbols */
2939 file_ptr symtab_offset; /* symbol table and */
2940 file_ptr stringtab_offset; /* string table file offsets */
2941 struct coff_symfile_info *info;
2942 const char *name;
2943 unsigned int size;
2944
2945 info = XCOFF_DATA (objfile);
2946 symfile_bfd = abfd = objfile->obfd;
2947 name = objfile_name (objfile);
2948
2949 num_symbols = bfd_get_symcount (abfd); /* # of symbols */
2950 symtab_offset = obj_sym_filepos (abfd); /* symbol table file offset */
2951 stringtab_offset = symtab_offset +
2952 num_symbols * coff_data (abfd)->local_symesz;
2953
2954 info->min_lineno_offset = 0;
2955 info->max_lineno_offset = 0;
2956 bfd_map_over_sections (abfd, find_linenos, info);
2957
2958 if (num_symbols > 0)
2959 {
2960 /* Read the string table. */
2961 init_stringtab (abfd, stringtab_offset, objfile);
2962
2963 /* Read the .debug section, if present and if we're not ignoring
2964 it. */
2965 if (!(objfile->flags & OBJF_READNEVER))
2966 {
2967 struct bfd_section *secp;
2968 bfd_size_type length;
2969 bfd_byte *debugsec = NULL;
2970
2971 secp = bfd_get_section_by_name (abfd, ".debug");
2972 if (secp)
2973 {
2974 length = bfd_section_size (abfd, secp);
2975 if (length)
2976 {
2977 debugsec
2978 = (bfd_byte *) obstack_alloc (&objfile->objfile_obstack,
2979 length);
2980
2981 if (!bfd_get_full_section_contents (abfd, secp, &debugsec))
2982 {
2983 error (_("Error reading .debug section of `%s': %s"),
2984 name, bfd_errmsg (bfd_get_error ()));
2985 }
2986 }
2987 }
2988 info->debugsec = (char *) debugsec;
2989 }
2990 }
2991
2992 /* Read the symbols. We keep them in core because we will want to
2993 access them randomly in read_symbol*. */
2994 val = bfd_seek (abfd, symtab_offset, SEEK_SET);
2995 if (val < 0)
2996 error (_("Error reading symbols from %s: %s"),
2997 name, bfd_errmsg (bfd_get_error ()));
2998 size = coff_data (abfd)->local_symesz * num_symbols;
2999 info->symtbl = (char *) obstack_alloc (&objfile->objfile_obstack, size);
3000 info->symtbl_num_syms = num_symbols;
3001
3002 val = bfd_bread (info->symtbl, size, abfd);
3003 if (val != size)
3004 perror_with_name (_("reading symbol table"));
3005
3006 /* If we are reinitializing, or if we have never loaded syms yet, init. */
3007 if (objfile->global_psymbols.capacity () == 0
3008 && objfile->static_psymbols.capacity () == 0)
3009 /* I'm not sure how how good num_symbols is; the rule of thumb in
3010 init_psymbol_list was developed for a.out. On the one hand,
3011 num_symbols includes auxents. On the other hand, it doesn't
3012 include N_SLINE. */
3013 init_psymbol_list (objfile, num_symbols);
3014
3015 scoped_free_pendings free_pending;
3016 minimal_symbol_reader reader (objfile);
3017
3018 /* Now that the symbol table data of the executable file are all in core,
3019 process them and define symbols accordingly. */
3020
3021 scan_xcoff_symtab (reader, objfile);
3022
3023 /* Install any minimal symbols that have been collected as the current
3024 minimal symbols for this objfile. */
3025
3026 reader.install ();
3027
3028 /* DWARF2 sections. */
3029
3030 if (dwarf2_has_info (objfile, &dwarf2_xcoff_names))
3031 dwarf2_build_psymtabs (objfile);
3032
3033 dwarf2_build_frame_info (objfile);
3034 }
3035 \f
3036 static void
3037 xcoff_symfile_offsets (struct objfile *objfile,
3038 const section_addr_info &addrs)
3039 {
3040 const char *first_section_name;
3041
3042 default_symfile_offsets (objfile, addrs);
3043
3044 /* Oneof the weird side-effects of default_symfile_offsets is that
3045 it sometimes sets some section indices to zero for sections that,
3046 in fact do not exist. See the body of default_symfile_offsets
3047 for more info on when that happens. Undo that, as this then allows
3048 us to test whether the associated section exists or not, and then
3049 access it quickly (without searching it again). */
3050
3051 if (objfile->num_sections == 0)
3052 return; /* Is that even possible? Better safe than sorry. */
3053
3054 first_section_name
3055 = bfd_section_name (objfile->obfd, objfile->sections[0].the_bfd_section);
3056
3057 if (objfile->sect_index_text == 0
3058 && strcmp (first_section_name, ".text") != 0)
3059 objfile->sect_index_text = -1;
3060
3061 if (objfile->sect_index_data == 0
3062 && strcmp (first_section_name, ".data") != 0)
3063 objfile->sect_index_data = -1;
3064
3065 if (objfile->sect_index_bss == 0
3066 && strcmp (first_section_name, ".bss") != 0)
3067 objfile->sect_index_bss = -1;
3068
3069 if (objfile->sect_index_rodata == 0
3070 && strcmp (first_section_name, ".rodata") != 0)
3071 objfile->sect_index_rodata = -1;
3072 }
3073
3074 /* Register our ability to parse symbols for xcoff BFD files. */
3075
3076 static const struct sym_fns xcoff_sym_fns =
3077 {
3078
3079 /* It is possible that coff and xcoff should be merged as
3080 they do have fundamental similarities (for example, the extra storage
3081 classes used for stabs could presumably be recognized in any COFF file).
3082 However, in addition to obvious things like all the csect hair, there are
3083 some subtler differences between xcoffread.c and coffread.c, notably
3084 the fact that coffread.c has no need to read in all the symbols, but
3085 xcoffread.c reads all the symbols and does in fact randomly access them
3086 (in C_BSTAT and line number processing). */
3087
3088 xcoff_new_init, /* init anything gbl to entire symtab */
3089 xcoff_symfile_init, /* read initial info, setup for sym_read() */
3090 xcoff_initial_scan, /* read a symbol file into symtab */
3091 NULL, /* sym_read_psymbols */
3092 xcoff_symfile_finish, /* finished with file, cleanup */
3093 xcoff_symfile_offsets, /* xlate offsets ext->int form */
3094 default_symfile_segments, /* Get segment information from a file. */
3095 aix_process_linenos,
3096 default_symfile_relocate, /* Relocate a debug section. */
3097 NULL, /* sym_probe_fns */
3098 &psym_functions
3099 };
3100
3101 /* Same as xcoff_get_n_import_files, but for core files. */
3102
3103 static int
3104 xcoff_get_core_n_import_files (bfd *abfd)
3105 {
3106 asection *sect = bfd_get_section_by_name (abfd, ".ldinfo");
3107 gdb_byte buf[4];
3108 file_ptr offset = 0;
3109 int n_entries = 0;
3110
3111 if (sect == NULL)
3112 return -1; /* Not a core file. */
3113
3114 for (offset = 0; offset < bfd_get_section_size (sect);)
3115 {
3116 int next;
3117
3118 n_entries++;
3119
3120 if (!bfd_get_section_contents (abfd, sect, buf, offset, 4))
3121 return -1;
3122 next = bfd_get_32 (abfd, buf);
3123 if (next == 0)
3124 break; /* This is the last entry. */
3125 offset += next;
3126 }
3127
3128 /* Return the number of entries, excluding the first one, which is
3129 the path to the executable that produced this core file. */
3130 return n_entries - 1;
3131 }
3132
3133 /* Return the number of import files (shared libraries) that the given
3134 BFD depends on. Return -1 if this number could not be computed. */
3135
3136 int
3137 xcoff_get_n_import_files (bfd *abfd)
3138 {
3139 asection *sect = bfd_get_section_by_name (abfd, ".loader");
3140 gdb_byte buf[4];
3141 int l_nimpid;
3142
3143 /* If the ".loader" section does not exist, the objfile is probably
3144 not an executable. Might be a core file... */
3145 if (sect == NULL)
3146 return xcoff_get_core_n_import_files (abfd);
3147
3148 /* The number of entries in the Import Files Table is stored in
3149 field l_nimpid. This field is always at offset 16, and is
3150 always 4 bytes long. Read those 4 bytes. */
3151
3152 if (!bfd_get_section_contents (abfd, sect, buf, 16, 4))
3153 return -1;
3154 l_nimpid = bfd_get_32 (abfd, buf);
3155
3156 /* By convention, the first entry is the default LIBPATH value
3157 to be used by the system loader, so it does not count towards
3158 the number of import files. */
3159 return l_nimpid - 1;
3160 }
3161
3162 /* Free the per-objfile xcoff data. */
3163
3164 static void
3165 xcoff_free_info (struct objfile *objfile, void *arg)
3166 {
3167 xfree (arg);
3168 }
3169
3170 void
3171 _initialize_xcoffread (void)
3172 {
3173 add_symtab_fns (bfd_target_xcoff_flavour, &xcoff_sym_fns);
3174
3175 xcoff_objfile_data_key = register_objfile_data_with_cleanup (NULL,
3176 xcoff_free_info);
3177 }
This page took 0.089151 seconds and 5 git commands to generate.